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1 /* Utility and Unix shadow routines for GNU Emacs on the Microsoft Windows API.
2
3 Copyright (C) 1994-1995, 2000-2015 Free Software Foundation, Inc.
4
5 This file is part of GNU Emacs.
6
7 GNU Emacs is free software: you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation, either version 3 of the License, or
10 (at your option) any later version.
11
12 GNU Emacs is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
16
17 You should have received a copy of the GNU General Public License
18 along with GNU Emacs. If not, see <http://www.gnu.org/licenses/>. */
19
20 /*
21 Geoff Voelker (voelker@cs.washington.edu) 7-29-94
22 */
23
24 #include <mingw_time.h>
25 #include <stddef.h> /* for offsetof */
26 #include <stdlib.h>
27 #include <stdio.h>
28 #include <float.h> /* for DBL_EPSILON */
29 #include <io.h>
30 #include <errno.h>
31 #include <fcntl.h>
32 #include <ctype.h>
33 #include <signal.h>
34 #include <sys/file.h>
35 #include <time.h> /* must be before nt/inc/sys/time.h, for MinGW64 */
36 #include <sys/time.h>
37 #include <sys/utime.h>
38 #include <math.h>
39
40 /* must include CRT headers *before* config.h */
41
42 #include <config.h>
43 #include <mbstring.h> /* for _mbspbrk, _mbslwr, _mbsrchr, ... */
44
45 #undef access
46 #undef chdir
47 #undef chmod
48 #undef creat
49 #undef ctime
50 #undef fopen
51 #undef link
52 #undef mkdir
53 #undef open
54 #undef rename
55 #undef rmdir
56 #undef unlink
57
58 #undef close
59 #undef dup
60 #undef dup2
61 #undef pipe
62 #undef read
63 #undef write
64
65 #undef strerror
66
67 #undef localtime
68
69 #include "lisp.h"
70 #include "epaths.h" /* for SHELL */
71
72 #include <pwd.h>
73 #include <grp.h>
74
75 /* MinGW64 defines these in its _mingw.h. */
76 #ifndef _ANONYMOUS_UNION
77 # define _ANONYMOUS_UNION
78 #endif
79 #ifndef _ANONYMOUS_STRUCT
80 # define _ANONYMOUS_STRUCT
81 #endif
82 #include <windows.h>
83 /* Some versions of compiler define MEMORYSTATUSEX, some don't, so we
84 use a different name to avoid compilation problems. */
85 typedef struct _MEMORY_STATUS_EX {
86 DWORD dwLength;
87 DWORD dwMemoryLoad;
88 DWORDLONG ullTotalPhys;
89 DWORDLONG ullAvailPhys;
90 DWORDLONG ullTotalPageFile;
91 DWORDLONG ullAvailPageFile;
92 DWORDLONG ullTotalVirtual;
93 DWORDLONG ullAvailVirtual;
94 DWORDLONG ullAvailExtendedVirtual;
95 } MEMORY_STATUS_EX,*LPMEMORY_STATUS_EX;
96
97 /* These are here so that GDB would know about these data types. This
98 allows to attach GDB to Emacs when a fatal exception is triggered
99 and Windows pops up the "application needs to be closed" dialog.
100 At that point, _gnu_exception_handler, the top-level exception
101 handler installed by the MinGW startup code, is somewhere on the
102 call-stack of the main thread, so going to that call frame and
103 looking at the argument to _gnu_exception_handler, which is a
104 PEXCEPTION_POINTERS pointer, can reveal the exception code
105 (excptr->ExceptionRecord->ExceptionCode) and the address where the
106 exception happened (excptr->ExceptionRecord->ExceptionAddress), as
107 well as some additional information specific to the exception. */
108 PEXCEPTION_POINTERS excptr;
109 PEXCEPTION_RECORD excprec;
110 PCONTEXT ctxrec;
111
112 #include <lmcons.h>
113 #include <shlobj.h>
114
115 #include <tlhelp32.h>
116 #include <psapi.h>
117 #ifndef _MSC_VER
118 #include <w32api.h>
119 #endif
120 #if _WIN32_WINNT < 0x0500
121 #if !defined (__MINGW32__) || __W32API_MAJOR_VERSION < 3 || (__W32API_MAJOR_VERSION == 3 && __W32API_MINOR_VERSION < 15)
122 /* This either is not in psapi.h or guarded by higher value of
123 _WIN32_WINNT than what we use. w32api supplied with MinGW 3.15
124 defines it in psapi.h */
125 typedef struct _PROCESS_MEMORY_COUNTERS_EX {
126 DWORD cb;
127 DWORD PageFaultCount;
128 SIZE_T PeakWorkingSetSize;
129 SIZE_T WorkingSetSize;
130 SIZE_T QuotaPeakPagedPoolUsage;
131 SIZE_T QuotaPagedPoolUsage;
132 SIZE_T QuotaPeakNonPagedPoolUsage;
133 SIZE_T QuotaNonPagedPoolUsage;
134 SIZE_T PagefileUsage;
135 SIZE_T PeakPagefileUsage;
136 SIZE_T PrivateUsage;
137 } PROCESS_MEMORY_COUNTERS_EX,*PPROCESS_MEMORY_COUNTERS_EX;
138 #endif
139 #endif
140
141 #include <winioctl.h>
142 #include <aclapi.h>
143 #include <sddl.h>
144
145 #include <sys/acl.h>
146 #include <acl.h>
147
148 /* This is not in MinGW's sddl.h (but they are in MSVC headers), so we
149 define them by hand if not already defined. */
150 #ifndef SDDL_REVISION_1
151 #define SDDL_REVISION_1 1
152 #endif /* SDDL_REVISION_1 */
153
154 #if defined(_MSC_VER) || defined(MINGW_W64)
155 /* MSVC and MinGW64 don't provide the definition of
156 REPARSE_DATA_BUFFER and the associated macros, except on ntifs.h,
157 which cannot be included because it triggers conflicts with other
158 Windows API headers. So we define it here by hand. */
159
160 typedef struct _REPARSE_DATA_BUFFER {
161 ULONG ReparseTag;
162 USHORT ReparseDataLength;
163 USHORT Reserved;
164 union {
165 struct {
166 USHORT SubstituteNameOffset;
167 USHORT SubstituteNameLength;
168 USHORT PrintNameOffset;
169 USHORT PrintNameLength;
170 ULONG Flags;
171 WCHAR PathBuffer[1];
172 } SymbolicLinkReparseBuffer;
173 struct {
174 USHORT SubstituteNameOffset;
175 USHORT SubstituteNameLength;
176 USHORT PrintNameOffset;
177 USHORT PrintNameLength;
178 WCHAR PathBuffer[1];
179 } MountPointReparseBuffer;
180 struct {
181 UCHAR DataBuffer[1];
182 } GenericReparseBuffer;
183 } DUMMYUNIONNAME;
184 } REPARSE_DATA_BUFFER, *PREPARSE_DATA_BUFFER;
185
186 #ifndef FILE_DEVICE_FILE_SYSTEM
187 #define FILE_DEVICE_FILE_SYSTEM 9
188 #endif
189 #ifndef METHOD_BUFFERED
190 #define METHOD_BUFFERED 0
191 #endif
192 #ifndef FILE_ANY_ACCESS
193 #define FILE_ANY_ACCESS 0x00000000
194 #endif
195 #ifndef CTL_CODE
196 #define CTL_CODE(t,f,m,a) (((t)<<16)|((a)<<14)|((f)<<2)|(m))
197 #endif
198 /* MinGW64 defines FSCTL_GET_REPARSE_POINT on winioctl.h. */
199 #ifndef FSCTL_GET_REPARSE_POINT
200 #define FSCTL_GET_REPARSE_POINT \
201 CTL_CODE(FILE_DEVICE_FILE_SYSTEM, 42, METHOD_BUFFERED, FILE_ANY_ACCESS)
202 #endif
203 #endif
204
205 /* TCP connection support. */
206 #include <sys/socket.h>
207 #undef socket
208 #undef bind
209 #undef connect
210 #undef htons
211 #undef ntohs
212 #undef inet_addr
213 #undef gethostname
214 #undef gethostbyname
215 #undef getservbyname
216 #undef getpeername
217 #undef shutdown
218 #undef setsockopt
219 #undef listen
220 #undef getsockname
221 #undef accept
222 #undef recvfrom
223 #undef sendto
224
225 #include <iphlpapi.h> /* should be after winsock2.h */
226
227 #include "w32.h"
228 #include <dirent.h>
229 #include "w32common.h"
230 #include "w32heap.h"
231 #include "w32select.h"
232 #include "systime.h"
233 #include "dispextern.h" /* for xstrcasecmp */
234 #include "coding.h" /* for Vlocale_coding_system */
235
236 #include "careadlinkat.h"
237 #include "allocator.h"
238
239 /* For serial_configure and serial_open. */
240 #include "process.h"
241
242 typedef HRESULT (WINAPI * ShGetFolderPath_fn)
243 (IN HWND, IN int, IN HANDLE, IN DWORD, OUT char *);
244
245 void globals_of_w32 (void);
246 static DWORD get_rid (PSID);
247 static int is_symlink (const char *);
248 static char * chase_symlinks (const char *);
249 static int enable_privilege (LPCTSTR, BOOL, TOKEN_PRIVILEGES *);
250 static int restore_privilege (TOKEN_PRIVILEGES *);
251 static BOOL WINAPI revert_to_self (void);
252
253 static int sys_access (const char *, int);
254 extern void *e_malloc (size_t);
255 extern int sys_select (int, SELECT_TYPE *, SELECT_TYPE *, SELECT_TYPE *,
256 struct timespec *, void *);
257 extern int sys_dup (int);
258
259
260
261 \f
262 /* Initialization states.
263
264 WARNING: If you add any more such variables for additional APIs,
265 you MUST add initialization for them to globals_of_w32
266 below. This is because these variables might get set
267 to non-NULL values during dumping, but the dumped Emacs
268 cannot reuse those values, because it could be run on a
269 different version of the OS, where API addresses are
270 different. */
271 static BOOL g_b_init_is_windows_9x;
272 static BOOL g_b_init_open_process_token;
273 static BOOL g_b_init_get_token_information;
274 static BOOL g_b_init_lookup_account_sid;
275 static BOOL g_b_init_get_sid_sub_authority;
276 static BOOL g_b_init_get_sid_sub_authority_count;
277 static BOOL g_b_init_get_security_info;
278 static BOOL g_b_init_get_file_security_w;
279 static BOOL g_b_init_get_file_security_a;
280 static BOOL g_b_init_get_security_descriptor_owner;
281 static BOOL g_b_init_get_security_descriptor_group;
282 static BOOL g_b_init_is_valid_sid;
283 static BOOL g_b_init_create_toolhelp32_snapshot;
284 static BOOL g_b_init_process32_first;
285 static BOOL g_b_init_process32_next;
286 static BOOL g_b_init_open_thread_token;
287 static BOOL g_b_init_impersonate_self;
288 static BOOL g_b_init_revert_to_self;
289 static BOOL g_b_init_get_process_memory_info;
290 static BOOL g_b_init_get_process_working_set_size;
291 static BOOL g_b_init_global_memory_status;
292 static BOOL g_b_init_global_memory_status_ex;
293 static BOOL g_b_init_get_length_sid;
294 static BOOL g_b_init_equal_sid;
295 static BOOL g_b_init_copy_sid;
296 static BOOL g_b_init_get_native_system_info;
297 static BOOL g_b_init_get_system_times;
298 static BOOL g_b_init_create_symbolic_link_w;
299 static BOOL g_b_init_create_symbolic_link_a;
300 static BOOL g_b_init_get_security_descriptor_dacl;
301 static BOOL g_b_init_convert_sd_to_sddl;
302 static BOOL g_b_init_convert_sddl_to_sd;
303 static BOOL g_b_init_is_valid_security_descriptor;
304 static BOOL g_b_init_set_file_security_w;
305 static BOOL g_b_init_set_file_security_a;
306 static BOOL g_b_init_set_named_security_info_w;
307 static BOOL g_b_init_set_named_security_info_a;
308 static BOOL g_b_init_get_adapters_info;
309
310 BOOL g_b_init_compare_string_w;
311
312 /*
313 BEGIN: Wrapper functions around OpenProcessToken
314 and other functions in advapi32.dll that are only
315 supported in Windows NT / 2k / XP
316 */
317 /* ** Function pointer typedefs ** */
318 typedef BOOL (WINAPI * OpenProcessToken_Proc) (
319 HANDLE ProcessHandle,
320 DWORD DesiredAccess,
321 PHANDLE TokenHandle);
322 typedef BOOL (WINAPI * GetTokenInformation_Proc) (
323 HANDLE TokenHandle,
324 TOKEN_INFORMATION_CLASS TokenInformationClass,
325 LPVOID TokenInformation,
326 DWORD TokenInformationLength,
327 PDWORD ReturnLength);
328 typedef BOOL (WINAPI * GetProcessTimes_Proc) (
329 HANDLE process_handle,
330 LPFILETIME creation_time,
331 LPFILETIME exit_time,
332 LPFILETIME kernel_time,
333 LPFILETIME user_time);
334
335 GetProcessTimes_Proc get_process_times_fn = NULL;
336
337 #ifdef _UNICODE
338 const char * const LookupAccountSid_Name = "LookupAccountSidW";
339 #else
340 const char * const LookupAccountSid_Name = "LookupAccountSidA";
341 #endif
342 typedef BOOL (WINAPI * LookupAccountSid_Proc) (
343 LPCTSTR lpSystemName,
344 PSID Sid,
345 LPTSTR Name,
346 LPDWORD cbName,
347 LPTSTR DomainName,
348 LPDWORD cbDomainName,
349 PSID_NAME_USE peUse);
350 typedef PDWORD (WINAPI * GetSidSubAuthority_Proc) (
351 PSID pSid,
352 DWORD n);
353 typedef PUCHAR (WINAPI * GetSidSubAuthorityCount_Proc) (
354 PSID pSid);
355 typedef DWORD (WINAPI * GetSecurityInfo_Proc) (
356 HANDLE handle,
357 SE_OBJECT_TYPE ObjectType,
358 SECURITY_INFORMATION SecurityInfo,
359 PSID *ppsidOwner,
360 PSID *ppsidGroup,
361 PACL *ppDacl,
362 PACL *ppSacl,
363 PSECURITY_DESCRIPTOR *ppSecurityDescriptor);
364 typedef BOOL (WINAPI * GetFileSecurityW_Proc) (
365 LPCWSTR lpFileName,
366 SECURITY_INFORMATION RequestedInformation,
367 PSECURITY_DESCRIPTOR pSecurityDescriptor,
368 DWORD nLength,
369 LPDWORD lpnLengthNeeded);
370 typedef BOOL (WINAPI * GetFileSecurityA_Proc) (
371 LPCSTR lpFileName,
372 SECURITY_INFORMATION RequestedInformation,
373 PSECURITY_DESCRIPTOR pSecurityDescriptor,
374 DWORD nLength,
375 LPDWORD lpnLengthNeeded);
376 typedef BOOL (WINAPI *SetFileSecurityW_Proc) (
377 LPCWSTR lpFileName,
378 SECURITY_INFORMATION SecurityInformation,
379 PSECURITY_DESCRIPTOR pSecurityDescriptor);
380 typedef BOOL (WINAPI *SetFileSecurityA_Proc) (
381 LPCSTR lpFileName,
382 SECURITY_INFORMATION SecurityInformation,
383 PSECURITY_DESCRIPTOR pSecurityDescriptor);
384 typedef DWORD (WINAPI *SetNamedSecurityInfoW_Proc) (
385 LPCWSTR lpObjectName,
386 SE_OBJECT_TYPE ObjectType,
387 SECURITY_INFORMATION SecurityInformation,
388 PSID psidOwner,
389 PSID psidGroup,
390 PACL pDacl,
391 PACL pSacl);
392 typedef DWORD (WINAPI *SetNamedSecurityInfoA_Proc) (
393 LPCSTR lpObjectName,
394 SE_OBJECT_TYPE ObjectType,
395 SECURITY_INFORMATION SecurityInformation,
396 PSID psidOwner,
397 PSID psidGroup,
398 PACL pDacl,
399 PACL pSacl);
400 typedef BOOL (WINAPI * GetSecurityDescriptorOwner_Proc) (
401 PSECURITY_DESCRIPTOR pSecurityDescriptor,
402 PSID *pOwner,
403 LPBOOL lpbOwnerDefaulted);
404 typedef BOOL (WINAPI * GetSecurityDescriptorGroup_Proc) (
405 PSECURITY_DESCRIPTOR pSecurityDescriptor,
406 PSID *pGroup,
407 LPBOOL lpbGroupDefaulted);
408 typedef BOOL (WINAPI *GetSecurityDescriptorDacl_Proc) (
409 PSECURITY_DESCRIPTOR pSecurityDescriptor,
410 LPBOOL lpbDaclPresent,
411 PACL *pDacl,
412 LPBOOL lpbDaclDefaulted);
413 typedef BOOL (WINAPI * IsValidSid_Proc) (
414 PSID sid);
415 typedef HANDLE (WINAPI * CreateToolhelp32Snapshot_Proc) (
416 DWORD dwFlags,
417 DWORD th32ProcessID);
418 typedef BOOL (WINAPI * Process32First_Proc) (
419 HANDLE hSnapshot,
420 LPPROCESSENTRY32 lppe);
421 typedef BOOL (WINAPI * Process32Next_Proc) (
422 HANDLE hSnapshot,
423 LPPROCESSENTRY32 lppe);
424 typedef BOOL (WINAPI * OpenThreadToken_Proc) (
425 HANDLE ThreadHandle,
426 DWORD DesiredAccess,
427 BOOL OpenAsSelf,
428 PHANDLE TokenHandle);
429 typedef BOOL (WINAPI * ImpersonateSelf_Proc) (
430 SECURITY_IMPERSONATION_LEVEL ImpersonationLevel);
431 typedef BOOL (WINAPI * RevertToSelf_Proc) (void);
432 typedef BOOL (WINAPI * GetProcessMemoryInfo_Proc) (
433 HANDLE Process,
434 PPROCESS_MEMORY_COUNTERS ppsmemCounters,
435 DWORD cb);
436 typedef BOOL (WINAPI * GetProcessWorkingSetSize_Proc) (
437 HANDLE hProcess,
438 PSIZE_T lpMinimumWorkingSetSize,
439 PSIZE_T lpMaximumWorkingSetSize);
440 typedef BOOL (WINAPI * GlobalMemoryStatus_Proc) (
441 LPMEMORYSTATUS lpBuffer);
442 typedef BOOL (WINAPI * GlobalMemoryStatusEx_Proc) (
443 LPMEMORY_STATUS_EX lpBuffer);
444 typedef BOOL (WINAPI * CopySid_Proc) (
445 DWORD nDestinationSidLength,
446 PSID pDestinationSid,
447 PSID pSourceSid);
448 typedef BOOL (WINAPI * EqualSid_Proc) (
449 PSID pSid1,
450 PSID pSid2);
451 typedef DWORD (WINAPI * GetLengthSid_Proc) (
452 PSID pSid);
453 typedef void (WINAPI * GetNativeSystemInfo_Proc) (
454 LPSYSTEM_INFO lpSystemInfo);
455 typedef BOOL (WINAPI * GetSystemTimes_Proc) (
456 LPFILETIME lpIdleTime,
457 LPFILETIME lpKernelTime,
458 LPFILETIME lpUserTime);
459 typedef BOOLEAN (WINAPI *CreateSymbolicLinkW_Proc) (
460 LPCWSTR lpSymlinkFileName,
461 LPCWSTR lpTargetFileName,
462 DWORD dwFlags);
463 typedef BOOLEAN (WINAPI *CreateSymbolicLinkA_Proc) (
464 LPCSTR lpSymlinkFileName,
465 LPCSTR lpTargetFileName,
466 DWORD dwFlags);
467 typedef BOOL (WINAPI *ConvertStringSecurityDescriptorToSecurityDescriptor_Proc) (
468 LPCTSTR StringSecurityDescriptor,
469 DWORD StringSDRevision,
470 PSECURITY_DESCRIPTOR *SecurityDescriptor,
471 PULONG SecurityDescriptorSize);
472 typedef BOOL (WINAPI *ConvertSecurityDescriptorToStringSecurityDescriptor_Proc) (
473 PSECURITY_DESCRIPTOR SecurityDescriptor,
474 DWORD RequestedStringSDRevision,
475 SECURITY_INFORMATION SecurityInformation,
476 LPTSTR *StringSecurityDescriptor,
477 PULONG StringSecurityDescriptorLen);
478 typedef BOOL (WINAPI *IsValidSecurityDescriptor_Proc) (PSECURITY_DESCRIPTOR);
479 typedef DWORD (WINAPI *GetAdaptersInfo_Proc) (
480 PIP_ADAPTER_INFO pAdapterInfo,
481 PULONG pOutBufLen);
482
483 int (WINAPI *pMultiByteToWideChar)(UINT,DWORD,LPCSTR,int,LPWSTR,int);
484 int (WINAPI *pWideCharToMultiByte)(UINT,DWORD,LPCWSTR,int,LPSTR,int,LPCSTR,LPBOOL);
485
486 /* ** A utility function ** */
487 static BOOL
488 is_windows_9x (void)
489 {
490 static BOOL s_b_ret = 0;
491 OSVERSIONINFO os_ver;
492 if (g_b_init_is_windows_9x == 0)
493 {
494 g_b_init_is_windows_9x = 1;
495 ZeroMemory (&os_ver, sizeof (OSVERSIONINFO));
496 os_ver.dwOSVersionInfoSize = sizeof (OSVERSIONINFO);
497 if (GetVersionEx (&os_ver))
498 {
499 s_b_ret = (os_ver.dwPlatformId == VER_PLATFORM_WIN32_WINDOWS);
500 }
501 }
502 return s_b_ret;
503 }
504
505 static Lisp_Object ltime (ULONGLONG);
506
507 /* Get total user and system times for get-internal-run-time.
508 Returns a list of integers if the times are provided by the OS
509 (NT derivatives), otherwise it returns the result of current-time. */
510 Lisp_Object
511 w32_get_internal_run_time (void)
512 {
513 if (get_process_times_fn)
514 {
515 FILETIME create, exit, kernel, user;
516 HANDLE proc = GetCurrentProcess ();
517 if ((*get_process_times_fn) (proc, &create, &exit, &kernel, &user))
518 {
519 LARGE_INTEGER user_int, kernel_int, total;
520 user_int.LowPart = user.dwLowDateTime;
521 user_int.HighPart = user.dwHighDateTime;
522 kernel_int.LowPart = kernel.dwLowDateTime;
523 kernel_int.HighPart = kernel.dwHighDateTime;
524 total.QuadPart = user_int.QuadPart + kernel_int.QuadPart;
525 return ltime (total.QuadPart);
526 }
527 }
528
529 return Fcurrent_time ();
530 }
531
532 /* ** The wrapper functions ** */
533
534 static BOOL WINAPI
535 open_process_token (HANDLE ProcessHandle,
536 DWORD DesiredAccess,
537 PHANDLE TokenHandle)
538 {
539 static OpenProcessToken_Proc s_pfn_Open_Process_Token = NULL;
540 HMODULE hm_advapi32 = NULL;
541 if (is_windows_9x () == TRUE)
542 {
543 return FALSE;
544 }
545 if (g_b_init_open_process_token == 0)
546 {
547 g_b_init_open_process_token = 1;
548 hm_advapi32 = LoadLibrary ("Advapi32.dll");
549 s_pfn_Open_Process_Token =
550 (OpenProcessToken_Proc) GetProcAddress (hm_advapi32, "OpenProcessToken");
551 }
552 if (s_pfn_Open_Process_Token == NULL)
553 {
554 return FALSE;
555 }
556 return (
557 s_pfn_Open_Process_Token (
558 ProcessHandle,
559 DesiredAccess,
560 TokenHandle)
561 );
562 }
563
564 static BOOL WINAPI
565 get_token_information (HANDLE TokenHandle,
566 TOKEN_INFORMATION_CLASS TokenInformationClass,
567 LPVOID TokenInformation,
568 DWORD TokenInformationLength,
569 PDWORD ReturnLength)
570 {
571 static GetTokenInformation_Proc s_pfn_Get_Token_Information = NULL;
572 HMODULE hm_advapi32 = NULL;
573 if (is_windows_9x () == TRUE)
574 {
575 return FALSE;
576 }
577 if (g_b_init_get_token_information == 0)
578 {
579 g_b_init_get_token_information = 1;
580 hm_advapi32 = LoadLibrary ("Advapi32.dll");
581 s_pfn_Get_Token_Information =
582 (GetTokenInformation_Proc) GetProcAddress (hm_advapi32, "GetTokenInformation");
583 }
584 if (s_pfn_Get_Token_Information == NULL)
585 {
586 return FALSE;
587 }
588 return (
589 s_pfn_Get_Token_Information (
590 TokenHandle,
591 TokenInformationClass,
592 TokenInformation,
593 TokenInformationLength,
594 ReturnLength)
595 );
596 }
597
598 static BOOL WINAPI
599 lookup_account_sid (LPCTSTR lpSystemName,
600 PSID Sid,
601 LPTSTR Name,
602 LPDWORD cbName,
603 LPTSTR DomainName,
604 LPDWORD cbDomainName,
605 PSID_NAME_USE peUse)
606 {
607 static LookupAccountSid_Proc s_pfn_Lookup_Account_Sid = NULL;
608 HMODULE hm_advapi32 = NULL;
609 if (is_windows_9x () == TRUE)
610 {
611 return FALSE;
612 }
613 if (g_b_init_lookup_account_sid == 0)
614 {
615 g_b_init_lookup_account_sid = 1;
616 hm_advapi32 = LoadLibrary ("Advapi32.dll");
617 s_pfn_Lookup_Account_Sid =
618 (LookupAccountSid_Proc) GetProcAddress (hm_advapi32, LookupAccountSid_Name);
619 }
620 if (s_pfn_Lookup_Account_Sid == NULL)
621 {
622 return FALSE;
623 }
624 return (
625 s_pfn_Lookup_Account_Sid (
626 lpSystemName,
627 Sid,
628 Name,
629 cbName,
630 DomainName,
631 cbDomainName,
632 peUse)
633 );
634 }
635
636 static PDWORD WINAPI
637 get_sid_sub_authority (PSID pSid, DWORD n)
638 {
639 static GetSidSubAuthority_Proc s_pfn_Get_Sid_Sub_Authority = NULL;
640 static DWORD zero = 0U;
641 HMODULE hm_advapi32 = NULL;
642 if (is_windows_9x () == TRUE)
643 {
644 return &zero;
645 }
646 if (g_b_init_get_sid_sub_authority == 0)
647 {
648 g_b_init_get_sid_sub_authority = 1;
649 hm_advapi32 = LoadLibrary ("Advapi32.dll");
650 s_pfn_Get_Sid_Sub_Authority =
651 (GetSidSubAuthority_Proc) GetProcAddress (
652 hm_advapi32, "GetSidSubAuthority");
653 }
654 if (s_pfn_Get_Sid_Sub_Authority == NULL)
655 {
656 return &zero;
657 }
658 return (s_pfn_Get_Sid_Sub_Authority (pSid, n));
659 }
660
661 static PUCHAR WINAPI
662 get_sid_sub_authority_count (PSID pSid)
663 {
664 static GetSidSubAuthorityCount_Proc s_pfn_Get_Sid_Sub_Authority_Count = NULL;
665 static UCHAR zero = 0U;
666 HMODULE hm_advapi32 = NULL;
667 if (is_windows_9x () == TRUE)
668 {
669 return &zero;
670 }
671 if (g_b_init_get_sid_sub_authority_count == 0)
672 {
673 g_b_init_get_sid_sub_authority_count = 1;
674 hm_advapi32 = LoadLibrary ("Advapi32.dll");
675 s_pfn_Get_Sid_Sub_Authority_Count =
676 (GetSidSubAuthorityCount_Proc) GetProcAddress (
677 hm_advapi32, "GetSidSubAuthorityCount");
678 }
679 if (s_pfn_Get_Sid_Sub_Authority_Count == NULL)
680 {
681 return &zero;
682 }
683 return (s_pfn_Get_Sid_Sub_Authority_Count (pSid));
684 }
685
686 static DWORD WINAPI
687 get_security_info (HANDLE handle,
688 SE_OBJECT_TYPE ObjectType,
689 SECURITY_INFORMATION SecurityInfo,
690 PSID *ppsidOwner,
691 PSID *ppsidGroup,
692 PACL *ppDacl,
693 PACL *ppSacl,
694 PSECURITY_DESCRIPTOR *ppSecurityDescriptor)
695 {
696 static GetSecurityInfo_Proc s_pfn_Get_Security_Info = NULL;
697 HMODULE hm_advapi32 = NULL;
698 if (is_windows_9x () == TRUE)
699 {
700 return FALSE;
701 }
702 if (g_b_init_get_security_info == 0)
703 {
704 g_b_init_get_security_info = 1;
705 hm_advapi32 = LoadLibrary ("Advapi32.dll");
706 s_pfn_Get_Security_Info =
707 (GetSecurityInfo_Proc) GetProcAddress (
708 hm_advapi32, "GetSecurityInfo");
709 }
710 if (s_pfn_Get_Security_Info == NULL)
711 {
712 return FALSE;
713 }
714 return (s_pfn_Get_Security_Info (handle, ObjectType, SecurityInfo,
715 ppsidOwner, ppsidGroup, ppDacl, ppSacl,
716 ppSecurityDescriptor));
717 }
718
719 static BOOL WINAPI
720 get_file_security (const char *lpFileName,
721 SECURITY_INFORMATION RequestedInformation,
722 PSECURITY_DESCRIPTOR pSecurityDescriptor,
723 DWORD nLength,
724 LPDWORD lpnLengthNeeded)
725 {
726 static GetFileSecurityA_Proc s_pfn_Get_File_SecurityA = NULL;
727 static GetFileSecurityW_Proc s_pfn_Get_File_SecurityW = NULL;
728 HMODULE hm_advapi32 = NULL;
729 if (is_windows_9x () == TRUE)
730 {
731 errno = ENOTSUP;
732 return FALSE;
733 }
734 if (w32_unicode_filenames)
735 {
736 wchar_t filename_w[MAX_PATH];
737
738 if (g_b_init_get_file_security_w == 0)
739 {
740 g_b_init_get_file_security_w = 1;
741 hm_advapi32 = LoadLibrary ("Advapi32.dll");
742 s_pfn_Get_File_SecurityW =
743 (GetFileSecurityW_Proc) GetProcAddress (hm_advapi32,
744 "GetFileSecurityW");
745 }
746 if (s_pfn_Get_File_SecurityW == NULL)
747 {
748 errno = ENOTSUP;
749 return FALSE;
750 }
751 filename_to_utf16 (lpFileName, filename_w);
752 return (s_pfn_Get_File_SecurityW (filename_w, RequestedInformation,
753 pSecurityDescriptor, nLength,
754 lpnLengthNeeded));
755 }
756 else
757 {
758 char filename_a[MAX_PATH];
759
760 if (g_b_init_get_file_security_a == 0)
761 {
762 g_b_init_get_file_security_a = 1;
763 hm_advapi32 = LoadLibrary ("Advapi32.dll");
764 s_pfn_Get_File_SecurityA =
765 (GetFileSecurityA_Proc) GetProcAddress (hm_advapi32,
766 "GetFileSecurityA");
767 }
768 if (s_pfn_Get_File_SecurityA == NULL)
769 {
770 errno = ENOTSUP;
771 return FALSE;
772 }
773 filename_to_ansi (lpFileName, filename_a);
774 return (s_pfn_Get_File_SecurityA (filename_a, RequestedInformation,
775 pSecurityDescriptor, nLength,
776 lpnLengthNeeded));
777 }
778 }
779
780 static BOOL WINAPI
781 set_file_security (const char *lpFileName,
782 SECURITY_INFORMATION SecurityInformation,
783 PSECURITY_DESCRIPTOR pSecurityDescriptor)
784 {
785 static SetFileSecurityW_Proc s_pfn_Set_File_SecurityW = NULL;
786 static SetFileSecurityA_Proc s_pfn_Set_File_SecurityA = NULL;
787 HMODULE hm_advapi32 = NULL;
788 if (is_windows_9x () == TRUE)
789 {
790 errno = ENOTSUP;
791 return FALSE;
792 }
793 if (w32_unicode_filenames)
794 {
795 wchar_t filename_w[MAX_PATH];
796
797 if (g_b_init_set_file_security_w == 0)
798 {
799 g_b_init_set_file_security_w = 1;
800 hm_advapi32 = LoadLibrary ("Advapi32.dll");
801 s_pfn_Set_File_SecurityW =
802 (SetFileSecurityW_Proc) GetProcAddress (hm_advapi32,
803 "SetFileSecurityW");
804 }
805 if (s_pfn_Set_File_SecurityW == NULL)
806 {
807 errno = ENOTSUP;
808 return FALSE;
809 }
810 filename_to_utf16 (lpFileName, filename_w);
811 return (s_pfn_Set_File_SecurityW (filename_w, SecurityInformation,
812 pSecurityDescriptor));
813 }
814 else
815 {
816 char filename_a[MAX_PATH];
817
818 if (g_b_init_set_file_security_a == 0)
819 {
820 g_b_init_set_file_security_a = 1;
821 hm_advapi32 = LoadLibrary ("Advapi32.dll");
822 s_pfn_Set_File_SecurityA =
823 (SetFileSecurityA_Proc) GetProcAddress (hm_advapi32,
824 "SetFileSecurityA");
825 }
826 if (s_pfn_Set_File_SecurityA == NULL)
827 {
828 errno = ENOTSUP;
829 return FALSE;
830 }
831 filename_to_ansi (lpFileName, filename_a);
832 return (s_pfn_Set_File_SecurityA (filename_a, SecurityInformation,
833 pSecurityDescriptor));
834 }
835 }
836
837 static DWORD WINAPI
838 set_named_security_info (LPCTSTR lpObjectName,
839 SE_OBJECT_TYPE ObjectType,
840 SECURITY_INFORMATION SecurityInformation,
841 PSID psidOwner,
842 PSID psidGroup,
843 PACL pDacl,
844 PACL pSacl)
845 {
846 static SetNamedSecurityInfoW_Proc s_pfn_Set_Named_Security_InfoW = NULL;
847 static SetNamedSecurityInfoA_Proc s_pfn_Set_Named_Security_InfoA = NULL;
848 HMODULE hm_advapi32 = NULL;
849 if (is_windows_9x () == TRUE)
850 {
851 errno = ENOTSUP;
852 return ENOTSUP;
853 }
854 if (w32_unicode_filenames)
855 {
856 wchar_t filename_w[MAX_PATH];
857
858 if (g_b_init_set_named_security_info_w == 0)
859 {
860 g_b_init_set_named_security_info_w = 1;
861 hm_advapi32 = LoadLibrary ("Advapi32.dll");
862 s_pfn_Set_Named_Security_InfoW =
863 (SetNamedSecurityInfoW_Proc) GetProcAddress (hm_advapi32,
864 "SetNamedSecurityInfoW");
865 }
866 if (s_pfn_Set_Named_Security_InfoW == NULL)
867 {
868 errno = ENOTSUP;
869 return ENOTSUP;
870 }
871 filename_to_utf16 (lpObjectName, filename_w);
872 return (s_pfn_Set_Named_Security_InfoW (filename_w, ObjectType,
873 SecurityInformation, psidOwner,
874 psidGroup, pDacl, pSacl));
875 }
876 else
877 {
878 char filename_a[MAX_PATH];
879
880 if (g_b_init_set_named_security_info_a == 0)
881 {
882 g_b_init_set_named_security_info_a = 1;
883 hm_advapi32 = LoadLibrary ("Advapi32.dll");
884 s_pfn_Set_Named_Security_InfoA =
885 (SetNamedSecurityInfoA_Proc) GetProcAddress (hm_advapi32,
886 "SetNamedSecurityInfoA");
887 }
888 if (s_pfn_Set_Named_Security_InfoA == NULL)
889 {
890 errno = ENOTSUP;
891 return ENOTSUP;
892 }
893 filename_to_ansi (lpObjectName, filename_a);
894 return (s_pfn_Set_Named_Security_InfoA (filename_a, ObjectType,
895 SecurityInformation, psidOwner,
896 psidGroup, pDacl, pSacl));
897 }
898 }
899
900 static BOOL WINAPI
901 get_security_descriptor_owner (PSECURITY_DESCRIPTOR pSecurityDescriptor,
902 PSID *pOwner,
903 LPBOOL lpbOwnerDefaulted)
904 {
905 static GetSecurityDescriptorOwner_Proc s_pfn_Get_Security_Descriptor_Owner = NULL;
906 HMODULE hm_advapi32 = NULL;
907 if (is_windows_9x () == TRUE)
908 {
909 errno = ENOTSUP;
910 return FALSE;
911 }
912 if (g_b_init_get_security_descriptor_owner == 0)
913 {
914 g_b_init_get_security_descriptor_owner = 1;
915 hm_advapi32 = LoadLibrary ("Advapi32.dll");
916 s_pfn_Get_Security_Descriptor_Owner =
917 (GetSecurityDescriptorOwner_Proc) GetProcAddress (
918 hm_advapi32, "GetSecurityDescriptorOwner");
919 }
920 if (s_pfn_Get_Security_Descriptor_Owner == NULL)
921 {
922 errno = ENOTSUP;
923 return FALSE;
924 }
925 return (s_pfn_Get_Security_Descriptor_Owner (pSecurityDescriptor, pOwner,
926 lpbOwnerDefaulted));
927 }
928
929 static BOOL WINAPI
930 get_security_descriptor_group (PSECURITY_DESCRIPTOR pSecurityDescriptor,
931 PSID *pGroup,
932 LPBOOL lpbGroupDefaulted)
933 {
934 static GetSecurityDescriptorGroup_Proc s_pfn_Get_Security_Descriptor_Group = NULL;
935 HMODULE hm_advapi32 = NULL;
936 if (is_windows_9x () == TRUE)
937 {
938 errno = ENOTSUP;
939 return FALSE;
940 }
941 if (g_b_init_get_security_descriptor_group == 0)
942 {
943 g_b_init_get_security_descriptor_group = 1;
944 hm_advapi32 = LoadLibrary ("Advapi32.dll");
945 s_pfn_Get_Security_Descriptor_Group =
946 (GetSecurityDescriptorGroup_Proc) GetProcAddress (
947 hm_advapi32, "GetSecurityDescriptorGroup");
948 }
949 if (s_pfn_Get_Security_Descriptor_Group == NULL)
950 {
951 errno = ENOTSUP;
952 return FALSE;
953 }
954 return (s_pfn_Get_Security_Descriptor_Group (pSecurityDescriptor, pGroup,
955 lpbGroupDefaulted));
956 }
957
958 static BOOL WINAPI
959 get_security_descriptor_dacl (PSECURITY_DESCRIPTOR pSecurityDescriptor,
960 LPBOOL lpbDaclPresent,
961 PACL *pDacl,
962 LPBOOL lpbDaclDefaulted)
963 {
964 static GetSecurityDescriptorDacl_Proc s_pfn_Get_Security_Descriptor_Dacl = NULL;
965 HMODULE hm_advapi32 = NULL;
966 if (is_windows_9x () == TRUE)
967 {
968 errno = ENOTSUP;
969 return FALSE;
970 }
971 if (g_b_init_get_security_descriptor_dacl == 0)
972 {
973 g_b_init_get_security_descriptor_dacl = 1;
974 hm_advapi32 = LoadLibrary ("Advapi32.dll");
975 s_pfn_Get_Security_Descriptor_Dacl =
976 (GetSecurityDescriptorDacl_Proc) GetProcAddress (
977 hm_advapi32, "GetSecurityDescriptorDacl");
978 }
979 if (s_pfn_Get_Security_Descriptor_Dacl == NULL)
980 {
981 errno = ENOTSUP;
982 return FALSE;
983 }
984 return (s_pfn_Get_Security_Descriptor_Dacl (pSecurityDescriptor,
985 lpbDaclPresent, pDacl,
986 lpbDaclDefaulted));
987 }
988
989 static BOOL WINAPI
990 is_valid_sid (PSID sid)
991 {
992 static IsValidSid_Proc s_pfn_Is_Valid_Sid = NULL;
993 HMODULE hm_advapi32 = NULL;
994 if (is_windows_9x () == TRUE)
995 {
996 return FALSE;
997 }
998 if (g_b_init_is_valid_sid == 0)
999 {
1000 g_b_init_is_valid_sid = 1;
1001 hm_advapi32 = LoadLibrary ("Advapi32.dll");
1002 s_pfn_Is_Valid_Sid =
1003 (IsValidSid_Proc) GetProcAddress (
1004 hm_advapi32, "IsValidSid");
1005 }
1006 if (s_pfn_Is_Valid_Sid == NULL)
1007 {
1008 return FALSE;
1009 }
1010 return (s_pfn_Is_Valid_Sid (sid));
1011 }
1012
1013 static BOOL WINAPI
1014 equal_sid (PSID sid1, PSID sid2)
1015 {
1016 static EqualSid_Proc s_pfn_Equal_Sid = NULL;
1017 HMODULE hm_advapi32 = NULL;
1018 if (is_windows_9x () == TRUE)
1019 {
1020 return FALSE;
1021 }
1022 if (g_b_init_equal_sid == 0)
1023 {
1024 g_b_init_equal_sid = 1;
1025 hm_advapi32 = LoadLibrary ("Advapi32.dll");
1026 s_pfn_Equal_Sid =
1027 (EqualSid_Proc) GetProcAddress (
1028 hm_advapi32, "EqualSid");
1029 }
1030 if (s_pfn_Equal_Sid == NULL)
1031 {
1032 return FALSE;
1033 }
1034 return (s_pfn_Equal_Sid (sid1, sid2));
1035 }
1036
1037 static DWORD WINAPI
1038 get_length_sid (PSID sid)
1039 {
1040 static GetLengthSid_Proc s_pfn_Get_Length_Sid = NULL;
1041 HMODULE hm_advapi32 = NULL;
1042 if (is_windows_9x () == TRUE)
1043 {
1044 return 0;
1045 }
1046 if (g_b_init_get_length_sid == 0)
1047 {
1048 g_b_init_get_length_sid = 1;
1049 hm_advapi32 = LoadLibrary ("Advapi32.dll");
1050 s_pfn_Get_Length_Sid =
1051 (GetLengthSid_Proc) GetProcAddress (
1052 hm_advapi32, "GetLengthSid");
1053 }
1054 if (s_pfn_Get_Length_Sid == NULL)
1055 {
1056 return 0;
1057 }
1058 return (s_pfn_Get_Length_Sid (sid));
1059 }
1060
1061 static BOOL WINAPI
1062 copy_sid (DWORD destlen, PSID dest, PSID src)
1063 {
1064 static CopySid_Proc s_pfn_Copy_Sid = NULL;
1065 HMODULE hm_advapi32 = NULL;
1066 if (is_windows_9x () == TRUE)
1067 {
1068 return FALSE;
1069 }
1070 if (g_b_init_copy_sid == 0)
1071 {
1072 g_b_init_copy_sid = 1;
1073 hm_advapi32 = LoadLibrary ("Advapi32.dll");
1074 s_pfn_Copy_Sid =
1075 (CopySid_Proc) GetProcAddress (
1076 hm_advapi32, "CopySid");
1077 }
1078 if (s_pfn_Copy_Sid == NULL)
1079 {
1080 return FALSE;
1081 }
1082 return (s_pfn_Copy_Sid (destlen, dest, src));
1083 }
1084
1085 /*
1086 END: Wrapper functions around OpenProcessToken
1087 and other functions in advapi32.dll that are only
1088 supported in Windows NT / 2k / XP
1089 */
1090
1091 static void WINAPI
1092 get_native_system_info (LPSYSTEM_INFO lpSystemInfo)
1093 {
1094 static GetNativeSystemInfo_Proc s_pfn_Get_Native_System_Info = NULL;
1095 if (is_windows_9x () != TRUE)
1096 {
1097 if (g_b_init_get_native_system_info == 0)
1098 {
1099 g_b_init_get_native_system_info = 1;
1100 s_pfn_Get_Native_System_Info =
1101 (GetNativeSystemInfo_Proc)GetProcAddress (GetModuleHandle ("kernel32.dll"),
1102 "GetNativeSystemInfo");
1103 }
1104 if (s_pfn_Get_Native_System_Info != NULL)
1105 s_pfn_Get_Native_System_Info (lpSystemInfo);
1106 }
1107 else
1108 lpSystemInfo->dwNumberOfProcessors = -1;
1109 }
1110
1111 static BOOL WINAPI
1112 get_system_times (LPFILETIME lpIdleTime,
1113 LPFILETIME lpKernelTime,
1114 LPFILETIME lpUserTime)
1115 {
1116 static GetSystemTimes_Proc s_pfn_Get_System_times = NULL;
1117 if (is_windows_9x () == TRUE)
1118 {
1119 return FALSE;
1120 }
1121 if (g_b_init_get_system_times == 0)
1122 {
1123 g_b_init_get_system_times = 1;
1124 s_pfn_Get_System_times =
1125 (GetSystemTimes_Proc)GetProcAddress (GetModuleHandle ("kernel32.dll"),
1126 "GetSystemTimes");
1127 }
1128 if (s_pfn_Get_System_times == NULL)
1129 return FALSE;
1130 return (s_pfn_Get_System_times (lpIdleTime, lpKernelTime, lpUserTime));
1131 }
1132
1133 static BOOLEAN WINAPI
1134 create_symbolic_link (LPCSTR lpSymlinkFilename,
1135 LPCSTR lpTargetFileName,
1136 DWORD dwFlags)
1137 {
1138 static CreateSymbolicLinkW_Proc s_pfn_Create_Symbolic_LinkW = NULL;
1139 static CreateSymbolicLinkA_Proc s_pfn_Create_Symbolic_LinkA = NULL;
1140 BOOLEAN retval;
1141
1142 if (is_windows_9x () == TRUE)
1143 {
1144 errno = ENOSYS;
1145 return 0;
1146 }
1147 if (w32_unicode_filenames)
1148 {
1149 wchar_t symfn_w[MAX_PATH], tgtfn_w[MAX_PATH];
1150
1151 if (g_b_init_create_symbolic_link_w == 0)
1152 {
1153 g_b_init_create_symbolic_link_w = 1;
1154 s_pfn_Create_Symbolic_LinkW =
1155 (CreateSymbolicLinkW_Proc)GetProcAddress (GetModuleHandle ("kernel32.dll"),
1156 "CreateSymbolicLinkW");
1157 }
1158 if (s_pfn_Create_Symbolic_LinkW == NULL)
1159 {
1160 errno = ENOSYS;
1161 return 0;
1162 }
1163
1164 filename_to_utf16 (lpSymlinkFilename, symfn_w);
1165 filename_to_utf16 (lpTargetFileName, tgtfn_w);
1166 retval = s_pfn_Create_Symbolic_LinkW (symfn_w, tgtfn_w, dwFlags);
1167 /* If we were denied creation of the symlink, try again after
1168 enabling the SeCreateSymbolicLinkPrivilege for our process. */
1169 if (!retval)
1170 {
1171 TOKEN_PRIVILEGES priv_current;
1172
1173 if (enable_privilege (SE_CREATE_SYMBOLIC_LINK_NAME, TRUE,
1174 &priv_current))
1175 {
1176 retval = s_pfn_Create_Symbolic_LinkW (symfn_w, tgtfn_w, dwFlags);
1177 restore_privilege (&priv_current);
1178 revert_to_self ();
1179 }
1180 }
1181 }
1182 else
1183 {
1184 char symfn_a[MAX_PATH], tgtfn_a[MAX_PATH];
1185
1186 if (g_b_init_create_symbolic_link_a == 0)
1187 {
1188 g_b_init_create_symbolic_link_a = 1;
1189 s_pfn_Create_Symbolic_LinkA =
1190 (CreateSymbolicLinkA_Proc)GetProcAddress (GetModuleHandle ("kernel32.dll"),
1191 "CreateSymbolicLinkA");
1192 }
1193 if (s_pfn_Create_Symbolic_LinkA == NULL)
1194 {
1195 errno = ENOSYS;
1196 return 0;
1197 }
1198
1199 filename_to_ansi (lpSymlinkFilename, symfn_a);
1200 filename_to_ansi (lpTargetFileName, tgtfn_a);
1201 retval = s_pfn_Create_Symbolic_LinkA (symfn_a, tgtfn_a, dwFlags);
1202 /* If we were denied creation of the symlink, try again after
1203 enabling the SeCreateSymbolicLinkPrivilege for our process. */
1204 if (!retval)
1205 {
1206 TOKEN_PRIVILEGES priv_current;
1207
1208 if (enable_privilege (SE_CREATE_SYMBOLIC_LINK_NAME, TRUE,
1209 &priv_current))
1210 {
1211 retval = s_pfn_Create_Symbolic_LinkA (symfn_a, tgtfn_a, dwFlags);
1212 restore_privilege (&priv_current);
1213 revert_to_self ();
1214 }
1215 }
1216 }
1217 return retval;
1218 }
1219
1220 static BOOL WINAPI
1221 is_valid_security_descriptor (PSECURITY_DESCRIPTOR pSecurityDescriptor)
1222 {
1223 static IsValidSecurityDescriptor_Proc s_pfn_Is_Valid_Security_Descriptor_Proc = NULL;
1224
1225 if (is_windows_9x () == TRUE)
1226 {
1227 errno = ENOTSUP;
1228 return FALSE;
1229 }
1230
1231 if (g_b_init_is_valid_security_descriptor == 0)
1232 {
1233 g_b_init_is_valid_security_descriptor = 1;
1234 s_pfn_Is_Valid_Security_Descriptor_Proc =
1235 (IsValidSecurityDescriptor_Proc)GetProcAddress (GetModuleHandle ("Advapi32.dll"),
1236 "IsValidSecurityDescriptor");
1237 }
1238 if (s_pfn_Is_Valid_Security_Descriptor_Proc == NULL)
1239 {
1240 errno = ENOTSUP;
1241 return FALSE;
1242 }
1243
1244 return s_pfn_Is_Valid_Security_Descriptor_Proc (pSecurityDescriptor);
1245 }
1246
1247 static BOOL WINAPI
1248 convert_sd_to_sddl (PSECURITY_DESCRIPTOR SecurityDescriptor,
1249 DWORD RequestedStringSDRevision,
1250 SECURITY_INFORMATION SecurityInformation,
1251 LPTSTR *StringSecurityDescriptor,
1252 PULONG StringSecurityDescriptorLen)
1253 {
1254 static ConvertSecurityDescriptorToStringSecurityDescriptor_Proc s_pfn_Convert_SD_To_SDDL = NULL;
1255 BOOL retval;
1256
1257 if (is_windows_9x () == TRUE)
1258 {
1259 errno = ENOTSUP;
1260 return FALSE;
1261 }
1262
1263 if (g_b_init_convert_sd_to_sddl == 0)
1264 {
1265 g_b_init_convert_sd_to_sddl = 1;
1266 #ifdef _UNICODE
1267 s_pfn_Convert_SD_To_SDDL =
1268 (ConvertSecurityDescriptorToStringSecurityDescriptor_Proc)GetProcAddress (GetModuleHandle ("Advapi32.dll"),
1269 "ConvertSecurityDescriptorToStringSecurityDescriptorW");
1270 #else
1271 s_pfn_Convert_SD_To_SDDL =
1272 (ConvertSecurityDescriptorToStringSecurityDescriptor_Proc)GetProcAddress (GetModuleHandle ("Advapi32.dll"),
1273 "ConvertSecurityDescriptorToStringSecurityDescriptorA");
1274 #endif
1275 }
1276 if (s_pfn_Convert_SD_To_SDDL == NULL)
1277 {
1278 errno = ENOTSUP;
1279 return FALSE;
1280 }
1281
1282 retval = s_pfn_Convert_SD_To_SDDL (SecurityDescriptor,
1283 RequestedStringSDRevision,
1284 SecurityInformation,
1285 StringSecurityDescriptor,
1286 StringSecurityDescriptorLen);
1287
1288 return retval;
1289 }
1290
1291 static BOOL WINAPI
1292 convert_sddl_to_sd (LPCTSTR StringSecurityDescriptor,
1293 DWORD StringSDRevision,
1294 PSECURITY_DESCRIPTOR *SecurityDescriptor,
1295 PULONG SecurityDescriptorSize)
1296 {
1297 static ConvertStringSecurityDescriptorToSecurityDescriptor_Proc s_pfn_Convert_SDDL_To_SD = NULL;
1298 BOOL retval;
1299
1300 if (is_windows_9x () == TRUE)
1301 {
1302 errno = ENOTSUP;
1303 return FALSE;
1304 }
1305
1306 if (g_b_init_convert_sddl_to_sd == 0)
1307 {
1308 g_b_init_convert_sddl_to_sd = 1;
1309 #ifdef _UNICODE
1310 s_pfn_Convert_SDDL_To_SD =
1311 (ConvertStringSecurityDescriptorToSecurityDescriptor_Proc)GetProcAddress (GetModuleHandle ("Advapi32.dll"),
1312 "ConvertStringSecurityDescriptorToSecurityDescriptorW");
1313 #else
1314 s_pfn_Convert_SDDL_To_SD =
1315 (ConvertStringSecurityDescriptorToSecurityDescriptor_Proc)GetProcAddress (GetModuleHandle ("Advapi32.dll"),
1316 "ConvertStringSecurityDescriptorToSecurityDescriptorA");
1317 #endif
1318 }
1319 if (s_pfn_Convert_SDDL_To_SD == NULL)
1320 {
1321 errno = ENOTSUP;
1322 return FALSE;
1323 }
1324
1325 retval = s_pfn_Convert_SDDL_To_SD (StringSecurityDescriptor,
1326 StringSDRevision,
1327 SecurityDescriptor,
1328 SecurityDescriptorSize);
1329
1330 return retval;
1331 }
1332
1333 static DWORD WINAPI
1334 get_adapters_info (PIP_ADAPTER_INFO pAdapterInfo, PULONG pOutBufLen)
1335 {
1336 static GetAdaptersInfo_Proc s_pfn_Get_Adapters_Info = NULL;
1337 HMODULE hm_iphlpapi = NULL;
1338
1339 if (is_windows_9x () == TRUE)
1340 return ERROR_NOT_SUPPORTED;
1341
1342 if (g_b_init_get_adapters_info == 0)
1343 {
1344 g_b_init_get_adapters_info = 1;
1345 hm_iphlpapi = LoadLibrary ("Iphlpapi.dll");
1346 if (hm_iphlpapi)
1347 s_pfn_Get_Adapters_Info = (GetAdaptersInfo_Proc)
1348 GetProcAddress (hm_iphlpapi, "GetAdaptersInfo");
1349 }
1350 if (s_pfn_Get_Adapters_Info == NULL)
1351 return ERROR_NOT_SUPPORTED;
1352 return s_pfn_Get_Adapters_Info (pAdapterInfo, pOutBufLen);
1353 }
1354
1355 \f
1356
1357 /* Return 1 if P is a valid pointer to an object of size SIZE. Return
1358 0 if P is NOT a valid pointer. Return -1 if we cannot validate P.
1359
1360 This is called from alloc.c:valid_pointer_p. */
1361 int
1362 w32_valid_pointer_p (void *p, int size)
1363 {
1364 SIZE_T done;
1365 HANDLE h = OpenProcess (PROCESS_VM_READ, FALSE, GetCurrentProcessId ());
1366
1367 if (h)
1368 {
1369 unsigned char *buf = alloca (size);
1370 int retval = ReadProcessMemory (h, p, buf, size, &done);
1371
1372 CloseHandle (h);
1373 return retval;
1374 }
1375 else
1376 return -1;
1377 }
1378
1379 \f
1380
1381 /* Here's an overview of how the Windows build supports file names
1382 that cannot be encoded by the current system codepage.
1383
1384 From the POV of Lisp and layers of C code above the functions here,
1385 Emacs on Windows pretends that its file names are encoded in UTF-8;
1386 see encode_file and decode_file on coding.c. Any file name that is
1387 passed as a unibyte string to C functions defined here is assumed
1388 to be in UTF-8 encoding. Any file name returned by functions
1389 defined here must be in UTF-8 encoding, with only a few exceptions
1390 reserved for a couple of special cases. (Be sure to use
1391 MAX_UTF8_PATH for char arrays that store UTF-8 encoded file names,
1392 as they can be much longer than MAX_PATH!)
1393
1394 The UTF-8 encoded file names cannot be passed to system APIs, as
1395 Windows does not support that. Therefore, they are converted
1396 either to UTF-16 or to the ANSI codepage, depending on the value of
1397 w32-unicode-filenames, before calling any system APIs or CRT library
1398 functions. The default value of that variable is determined by the
1399 OS on which Emacs runs: nil on Windows 9X and t otherwise, but the
1400 user can change that default (although I don't see why would she
1401 want to).
1402
1403 The 4 functions defined below, filename_to_utf16, filename_to_ansi,
1404 filename_from_utf16, and filename_from_ansi, are the workhorses of
1405 these conversions. They rely on Windows native APIs
1406 MultiByteToWideChar and WideCharToMultiByte; we cannot use
1407 functions from coding.c here, because they allocate memory, which
1408 is a bad idea on the level of libc, which is what the functions
1409 here emulate. (If you worry about performance due to constant
1410 conversion back and forth from UTF-8 to UTF-16, then don't: first,
1411 it was measured to take only a few microseconds on a not-so-fast
1412 machine, and second, that's exactly what the ANSI APIs we used
1413 before did anyway, because they are just thin wrappers around the
1414 Unicode APIs.)
1415
1416 The variables file-name-coding-system and default-file-name-coding-system
1417 still exist, but are actually used only when a file name needs to
1418 be converted to the ANSI codepage. This happens all the time when
1419 w32-unicode-filenames is nil, but can also happen from time to time
1420 when it is t. Otherwise, these variables have no effect on file-name
1421 encoding when w32-unicode-filenames is t; this is similar to
1422 selection-coding-system.
1423
1424 This arrangement works very well, but it has a few gotchas and
1425 limitations:
1426
1427 . Lisp code that encodes or decodes file names manually should
1428 normally use 'utf-8' as the coding-system on Windows,
1429 disregarding file-name-coding-system. This is a somewhat
1430 unpleasant consequence, but it cannot be avoided. Fortunately,
1431 very few Lisp packages need to do that.
1432
1433 More generally, passing to library functions (e.g., fopen or
1434 opendir) file names already encoded in the ANSI codepage is
1435 explicitly *verboten*, as all those functions, as shadowed and
1436 emulated here, assume they will receive UTF-8 encoded file names.
1437
1438 For the same reasons, no CRT function or Win32 API can be called
1439 directly in Emacs sources, without either converting the file
1440 names from UTF-8 to UTF-16 or ANSI codepage, or going through
1441 some shadowing function defined here.
1442
1443 . Environment variables stored in Vprocess_environment are encoded
1444 in the ANSI codepage, so if getenv/egetenv is used for a variable
1445 whose value is a file name or a list of directories, it needs to
1446 be converted to UTF-8, before it is used as argument to functions
1447 or decoded into a Lisp string.
1448
1449 . File names passed to external libraries, like the image libraries
1450 and GnuTLS, need special handling. These libraries generally
1451 don't support UTF-16 or UTF-8 file names, so they must get file
1452 names encoded in the ANSI codepage. To facilitate using these
1453 libraries with file names that are not encodable in the ANSI
1454 codepage, use the function ansi_encode_filename, which will try
1455 to use the short 8+3 alias of a file name if that file name is
1456 not encodable in the ANSI codepage. See image.c and gnutls.c for
1457 examples of how this should be done.
1458
1459 . Running subprocesses in non-ASCII directories and with non-ASCII
1460 file arguments is limited to the current codepage (even though
1461 Emacs is perfectly capable of finding an executable program file
1462 in a directory whose name cannot be encoded in the current
1463 codepage). This is because the command-line arguments are
1464 encoded _before_ they get to the w32-specific level, and the
1465 encoding is not known in advance (it doesn't have to be the
1466 current ANSI codepage), so w32proc.c functions cannot re-encode
1467 them in UTF-16. This should be fixed, but will also require
1468 changes in cmdproxy. The current limitation is not terribly bad
1469 anyway, since very few, if any, Windows console programs that are
1470 likely to be invoked by Emacs support UTF-16 encoded command
1471 lines.
1472
1473 . For similar reasons, server.el and emacsclient are also limited
1474 to the current ANSI codepage for now.
1475
1476 . Emacs itself can only handle command-line arguments encoded in
1477 the current codepage.
1478
1479 . Turning on w32-unicode-filename on Windows 9X (if it at all
1480 works) requires UNICOWS.DLL, which is thus a requirement even in
1481 non-GUI sessions, something the we previously avoided. */
1482
1483 \f
1484
1485 /* Converting file names from UTF-8 to either UTF-16 or the ANSI
1486 codepage defined by file-name-coding-system. */
1487
1488 /* Current codepage for encoding file names. */
1489 static int file_name_codepage;
1490
1491 /* Produce a Windows ANSI codepage suitable for encoding file names.
1492 Return the information about that codepage in CP_INFO. */
1493 int
1494 codepage_for_filenames (CPINFO *cp_info)
1495 {
1496 /* A simple cache to avoid calling GetCPInfo every time we need to
1497 encode/decode a file name. The file-name encoding is not
1498 supposed to be changed too frequently, if ever. */
1499 static Lisp_Object last_file_name_encoding;
1500 static CPINFO cp;
1501 Lisp_Object current_encoding;
1502
1503 current_encoding = Vfile_name_coding_system;
1504 if (NILP (current_encoding))
1505 current_encoding = Vdefault_file_name_coding_system;
1506
1507 if (!EQ (last_file_name_encoding, current_encoding))
1508 {
1509 /* Default to the current ANSI codepage. */
1510 file_name_codepage = w32_ansi_code_page;
1511
1512 if (NILP (current_encoding))
1513 {
1514 char *cpname = SDATA (SYMBOL_NAME (current_encoding));
1515 char *cp = NULL, *end;
1516 int cpnum;
1517
1518 if (strncmp (cpname, "cp", 2) == 0)
1519 cp = cpname + 2;
1520 else if (strncmp (cpname, "windows-", 8) == 0)
1521 cp = cpname + 8;
1522
1523 if (cp)
1524 {
1525 end = cp;
1526 cpnum = strtol (cp, &end, 10);
1527 if (cpnum && *end == '\0' && end - cp >= 2)
1528 file_name_codepage = cpnum;
1529 }
1530 }
1531
1532 if (!file_name_codepage)
1533 file_name_codepage = CP_ACP; /* CP_ACP = 0, but let's not assume that */
1534
1535 if (!GetCPInfo (file_name_codepage, &cp))
1536 {
1537 file_name_codepage = CP_ACP;
1538 if (!GetCPInfo (file_name_codepage, &cp))
1539 emacs_abort ();
1540 }
1541 }
1542 if (cp_info)
1543 *cp_info = cp;
1544
1545 return file_name_codepage;
1546 }
1547
1548 int
1549 filename_to_utf16 (const char *fn_in, wchar_t *fn_out)
1550 {
1551 int result = pMultiByteToWideChar (CP_UTF8, MB_ERR_INVALID_CHARS, fn_in, -1,
1552 fn_out, MAX_PATH);
1553
1554 if (!result)
1555 {
1556 DWORD err = GetLastError ();
1557
1558 switch (err)
1559 {
1560 case ERROR_INVALID_FLAGS:
1561 case ERROR_INVALID_PARAMETER:
1562 errno = EINVAL;
1563 break;
1564 case ERROR_INSUFFICIENT_BUFFER:
1565 case ERROR_NO_UNICODE_TRANSLATION:
1566 default:
1567 errno = ENOENT;
1568 break;
1569 }
1570 return -1;
1571 }
1572 return 0;
1573 }
1574
1575 int
1576 filename_from_utf16 (const wchar_t *fn_in, char *fn_out)
1577 {
1578 int result = pWideCharToMultiByte (CP_UTF8, 0, fn_in, -1,
1579 fn_out, MAX_UTF8_PATH, NULL, NULL);
1580
1581 if (!result)
1582 {
1583 DWORD err = GetLastError ();
1584
1585 switch (err)
1586 {
1587 case ERROR_INVALID_FLAGS:
1588 case ERROR_INVALID_PARAMETER:
1589 errno = EINVAL;
1590 break;
1591 case ERROR_INSUFFICIENT_BUFFER:
1592 case ERROR_NO_UNICODE_TRANSLATION:
1593 default:
1594 errno = ENOENT;
1595 break;
1596 }
1597 return -1;
1598 }
1599 return 0;
1600 }
1601
1602 int
1603 filename_to_ansi (const char *fn_in, char *fn_out)
1604 {
1605 wchar_t fn_utf16[MAX_PATH];
1606
1607 if (filename_to_utf16 (fn_in, fn_utf16) == 0)
1608 {
1609 int result;
1610 int codepage = codepage_for_filenames (NULL);
1611
1612 result = pWideCharToMultiByte (codepage, 0, fn_utf16, -1,
1613 fn_out, MAX_PATH, NULL, NULL);
1614 if (!result)
1615 {
1616 DWORD err = GetLastError ();
1617
1618 switch (err)
1619 {
1620 case ERROR_INVALID_FLAGS:
1621 case ERROR_INVALID_PARAMETER:
1622 errno = EINVAL;
1623 break;
1624 case ERROR_INSUFFICIENT_BUFFER:
1625 case ERROR_NO_UNICODE_TRANSLATION:
1626 default:
1627 errno = ENOENT;
1628 break;
1629 }
1630 return -1;
1631 }
1632 return 0;
1633 }
1634 return -1;
1635 }
1636
1637 int
1638 filename_from_ansi (const char *fn_in, char *fn_out)
1639 {
1640 wchar_t fn_utf16[MAX_PATH];
1641 int codepage = codepage_for_filenames (NULL);
1642 int result = pMultiByteToWideChar (codepage, MB_ERR_INVALID_CHARS, fn_in, -1,
1643 fn_utf16, MAX_PATH);
1644
1645 if (!result)
1646 {
1647 DWORD err = GetLastError ();
1648
1649 switch (err)
1650 {
1651 case ERROR_INVALID_FLAGS:
1652 case ERROR_INVALID_PARAMETER:
1653 errno = EINVAL;
1654 break;
1655 case ERROR_INSUFFICIENT_BUFFER:
1656 case ERROR_NO_UNICODE_TRANSLATION:
1657 default:
1658 errno = ENOENT;
1659 break;
1660 }
1661 return -1;
1662 }
1663 return filename_from_utf16 (fn_utf16, fn_out);
1664 }
1665
1666 \f
1667
1668 /* The directory where we started, in UTF-8. */
1669 static char startup_dir[MAX_UTF8_PATH];
1670
1671 /* Get the current working directory. */
1672 char *
1673 getcwd (char *dir, int dirsize)
1674 {
1675 if (!dirsize)
1676 {
1677 errno = EINVAL;
1678 return NULL;
1679 }
1680 if (dirsize <= strlen (startup_dir))
1681 {
1682 errno = ERANGE;
1683 return NULL;
1684 }
1685 #if 0
1686 if (GetCurrentDirectory (MAXPATHLEN, dir) > 0)
1687 return dir;
1688 return NULL;
1689 #else
1690 /* Emacs doesn't actually change directory itself, it stays in the
1691 same directory where it was started. */
1692 strcpy (dir, startup_dir);
1693 return dir;
1694 #endif
1695 }
1696
1697 /* Emulate getloadavg. */
1698
1699 struct load_sample {
1700 time_t sample_time;
1701 ULONGLONG idle;
1702 ULONGLONG kernel;
1703 ULONGLONG user;
1704 };
1705
1706 /* Number of processors on this machine. */
1707 static unsigned num_of_processors;
1708
1709 /* We maintain 1-sec samples for the last 16 minutes in a circular buffer. */
1710 static struct load_sample samples[16*60];
1711 static int first_idx = -1, last_idx = -1;
1712 static int max_idx = ARRAYELTS (samples);
1713
1714 static int
1715 buf_next (int from)
1716 {
1717 int next_idx = from + 1;
1718
1719 if (next_idx >= max_idx)
1720 next_idx = 0;
1721
1722 return next_idx;
1723 }
1724
1725 static int
1726 buf_prev (int from)
1727 {
1728 int prev_idx = from - 1;
1729
1730 if (prev_idx < 0)
1731 prev_idx = max_idx - 1;
1732
1733 return prev_idx;
1734 }
1735
1736 static void
1737 sample_system_load (ULONGLONG *idle, ULONGLONG *kernel, ULONGLONG *user)
1738 {
1739 SYSTEM_INFO sysinfo;
1740 FILETIME ft_idle, ft_user, ft_kernel;
1741
1742 /* Initialize the number of processors on this machine. */
1743 if (num_of_processors <= 0)
1744 {
1745 get_native_system_info (&sysinfo);
1746 num_of_processors = sysinfo.dwNumberOfProcessors;
1747 if (num_of_processors <= 0)
1748 {
1749 GetSystemInfo (&sysinfo);
1750 num_of_processors = sysinfo.dwNumberOfProcessors;
1751 }
1752 if (num_of_processors <= 0)
1753 num_of_processors = 1;
1754 }
1755
1756 /* TODO: Take into account threads that are ready to run, by
1757 sampling the "\System\Processor Queue Length" performance
1758 counter. The code below accounts only for threads that are
1759 actually running. */
1760
1761 if (get_system_times (&ft_idle, &ft_kernel, &ft_user))
1762 {
1763 ULARGE_INTEGER uidle, ukernel, uuser;
1764
1765 memcpy (&uidle, &ft_idle, sizeof (ft_idle));
1766 memcpy (&ukernel, &ft_kernel, sizeof (ft_kernel));
1767 memcpy (&uuser, &ft_user, sizeof (ft_user));
1768 *idle = uidle.QuadPart;
1769 *kernel = ukernel.QuadPart;
1770 *user = uuser.QuadPart;
1771 }
1772 else
1773 {
1774 *idle = 0;
1775 *kernel = 0;
1776 *user = 0;
1777 }
1778 }
1779
1780 /* Produce the load average for a given time interval, using the
1781 samples in the samples[] array. WHICH can be 0, 1, or 2, meaning
1782 1-minute, 5-minute, or 15-minute average, respectively. */
1783 static double
1784 getavg (int which)
1785 {
1786 double retval = -1.0;
1787 double tdiff;
1788 int idx;
1789 double span = (which == 0 ? 1.0 : (which == 1 ? 5.0 : 15.0)) * 60;
1790 time_t now = samples[last_idx].sample_time;
1791
1792 if (first_idx != last_idx)
1793 {
1794 for (idx = buf_prev (last_idx); ; idx = buf_prev (idx))
1795 {
1796 tdiff = difftime (now, samples[idx].sample_time);
1797 if (tdiff >= span - 2*DBL_EPSILON*now)
1798 {
1799 long double sys =
1800 samples[last_idx].kernel + samples[last_idx].user
1801 - (samples[idx].kernel + samples[idx].user);
1802 long double idl = samples[last_idx].idle - samples[idx].idle;
1803
1804 retval = (1.0 - idl / sys) * num_of_processors;
1805 break;
1806 }
1807 if (idx == first_idx)
1808 break;
1809 }
1810 }
1811
1812 return retval;
1813 }
1814
1815 int
1816 getloadavg (double loadavg[], int nelem)
1817 {
1818 int elem;
1819 ULONGLONG idle, kernel, user;
1820 time_t now = time (NULL);
1821
1822 /* If system time jumped back for some reason, delete all samples
1823 whose time is later than the current wall-clock time. This
1824 prevents load average figures from becoming frozen for prolonged
1825 periods of time, when system time is reset backwards. */
1826 if (last_idx >= 0)
1827 {
1828 while (difftime (now, samples[last_idx].sample_time) < -1.0)
1829 {
1830 if (last_idx == first_idx)
1831 {
1832 first_idx = last_idx = -1;
1833 break;
1834 }
1835 last_idx = buf_prev (last_idx);
1836 }
1837 }
1838
1839 /* Store another sample. We ignore samples that are less than 1 sec
1840 apart. */
1841 if (last_idx < 0
1842 || (difftime (now, samples[last_idx].sample_time)
1843 >= 1.0 - 2*DBL_EPSILON*now))
1844 {
1845 sample_system_load (&idle, &kernel, &user);
1846 last_idx = buf_next (last_idx);
1847 samples[last_idx].sample_time = now;
1848 samples[last_idx].idle = idle;
1849 samples[last_idx].kernel = kernel;
1850 samples[last_idx].user = user;
1851 /* If the buffer has more that 15 min worth of samples, discard
1852 the old ones. */
1853 if (first_idx == -1)
1854 first_idx = last_idx;
1855 while (first_idx != last_idx
1856 && (difftime (now, samples[first_idx].sample_time)
1857 >= 15.0*60 + 2*DBL_EPSILON*now))
1858 first_idx = buf_next (first_idx);
1859 }
1860
1861 for (elem = 0; elem < nelem; elem++)
1862 {
1863 double avg = getavg (elem);
1864
1865 if (avg < 0)
1866 break;
1867 loadavg[elem] = avg;
1868 }
1869
1870 return elem;
1871 }
1872
1873 /* Emulate getpwuid, getpwnam and others. */
1874
1875 #define PASSWD_FIELD_SIZE 256
1876
1877 static char dflt_passwd_name[PASSWD_FIELD_SIZE];
1878 static char dflt_passwd_passwd[PASSWD_FIELD_SIZE];
1879 static char dflt_passwd_gecos[PASSWD_FIELD_SIZE];
1880 static char dflt_passwd_dir[MAX_UTF8_PATH];
1881 static char dflt_passwd_shell[MAX_UTF8_PATH];
1882
1883 static struct passwd dflt_passwd =
1884 {
1885 dflt_passwd_name,
1886 dflt_passwd_passwd,
1887 0,
1888 0,
1889 0,
1890 dflt_passwd_gecos,
1891 dflt_passwd_dir,
1892 dflt_passwd_shell,
1893 };
1894
1895 static char dflt_group_name[GNLEN+1];
1896
1897 static struct group dflt_group =
1898 {
1899 /* When group information is not available, we return this as the
1900 group for all files. */
1901 dflt_group_name,
1902 0,
1903 };
1904
1905 unsigned
1906 getuid (void)
1907 {
1908 return dflt_passwd.pw_uid;
1909 }
1910
1911 unsigned
1912 geteuid (void)
1913 {
1914 /* I could imagine arguing for checking to see whether the user is
1915 in the Administrators group and returning a UID of 0 for that
1916 case, but I don't know how wise that would be in the long run. */
1917 return getuid ();
1918 }
1919
1920 unsigned
1921 getgid (void)
1922 {
1923 return dflt_passwd.pw_gid;
1924 }
1925
1926 unsigned
1927 getegid (void)
1928 {
1929 return getgid ();
1930 }
1931
1932 struct passwd *
1933 getpwuid (unsigned uid)
1934 {
1935 if (uid == dflt_passwd.pw_uid)
1936 return &dflt_passwd;
1937 return NULL;
1938 }
1939
1940 struct group *
1941 getgrgid (gid_t gid)
1942 {
1943 return &dflt_group;
1944 }
1945
1946 struct passwd *
1947 getpwnam (char *name)
1948 {
1949 struct passwd *pw;
1950
1951 pw = getpwuid (getuid ());
1952 if (!pw)
1953 return pw;
1954
1955 if (xstrcasecmp (name, pw->pw_name))
1956 return NULL;
1957
1958 return pw;
1959 }
1960
1961 static void
1962 init_user_info (void)
1963 {
1964 /* Find the user's real name by opening the process token and
1965 looking up the name associated with the user-sid in that token.
1966
1967 Use the relative portion of the identifier authority value from
1968 the user-sid as the user id value (same for group id using the
1969 primary group sid from the process token). */
1970
1971 char uname[UNLEN+1], gname[GNLEN+1], domain[1025];
1972 DWORD ulength = sizeof (uname), dlength = sizeof (domain), needed;
1973 DWORD glength = sizeof (gname);
1974 HANDLE token = NULL;
1975 SID_NAME_USE user_type;
1976 unsigned char *buf = NULL;
1977 DWORD blen = 0;
1978 TOKEN_USER user_token;
1979 TOKEN_PRIMARY_GROUP group_token;
1980 BOOL result;
1981
1982 result = open_process_token (GetCurrentProcess (), TOKEN_QUERY, &token);
1983 if (result)
1984 {
1985 result = get_token_information (token, TokenUser, NULL, 0, &blen);
1986 if (!result && GetLastError () == ERROR_INSUFFICIENT_BUFFER)
1987 {
1988 buf = xmalloc (blen);
1989 result = get_token_information (token, TokenUser,
1990 (LPVOID)buf, blen, &needed);
1991 if (result)
1992 {
1993 memcpy (&user_token, buf, sizeof (user_token));
1994 result = lookup_account_sid (NULL, user_token.User.Sid,
1995 uname, &ulength,
1996 domain, &dlength, &user_type);
1997 }
1998 }
1999 else
2000 result = FALSE;
2001 }
2002 if (result)
2003 {
2004 strcpy (dflt_passwd.pw_name, uname);
2005 /* Determine a reasonable uid value. */
2006 if (xstrcasecmp ("administrator", uname) == 0)
2007 {
2008 dflt_passwd.pw_uid = 500; /* well-known Administrator uid */
2009 dflt_passwd.pw_gid = 513; /* well-known None gid */
2010 }
2011 else
2012 {
2013 /* Use the last sub-authority value of the RID, the relative
2014 portion of the SID, as user/group ID. */
2015 dflt_passwd.pw_uid = get_rid (user_token.User.Sid);
2016
2017 /* Get group id and name. */
2018 result = get_token_information (token, TokenPrimaryGroup,
2019 (LPVOID)buf, blen, &needed);
2020 if (!result && GetLastError () == ERROR_INSUFFICIENT_BUFFER)
2021 {
2022 buf = xrealloc (buf, blen = needed);
2023 result = get_token_information (token, TokenPrimaryGroup,
2024 (LPVOID)buf, blen, &needed);
2025 }
2026 if (result)
2027 {
2028 memcpy (&group_token, buf, sizeof (group_token));
2029 dflt_passwd.pw_gid = get_rid (group_token.PrimaryGroup);
2030 dlength = sizeof (domain);
2031 /* If we can get at the real Primary Group name, use that.
2032 Otherwise, the default group name was already set to
2033 "None" in globals_of_w32. */
2034 if (lookup_account_sid (NULL, group_token.PrimaryGroup,
2035 gname, &glength, NULL, &dlength,
2036 &user_type))
2037 strcpy (dflt_group_name, gname);
2038 }
2039 else
2040 dflt_passwd.pw_gid = dflt_passwd.pw_uid;
2041 }
2042 }
2043 /* If security calls are not supported (presumably because we
2044 are running under Windows 9X), fallback to this: */
2045 else if (GetUserName (uname, &ulength))
2046 {
2047 strcpy (dflt_passwd.pw_name, uname);
2048 if (xstrcasecmp ("administrator", uname) == 0)
2049 dflt_passwd.pw_uid = 0;
2050 else
2051 dflt_passwd.pw_uid = 123;
2052 dflt_passwd.pw_gid = dflt_passwd.pw_uid;
2053 }
2054 else
2055 {
2056 strcpy (dflt_passwd.pw_name, "unknown");
2057 dflt_passwd.pw_uid = 123;
2058 dflt_passwd.pw_gid = 123;
2059 }
2060 dflt_group.gr_gid = dflt_passwd.pw_gid;
2061
2062 /* Set dir and shell from environment variables. */
2063 if (w32_unicode_filenames)
2064 {
2065 wchar_t *home = _wgetenv (L"HOME");
2066 wchar_t *shell = _wgetenv (L"SHELL");
2067
2068 /* Ensure HOME and SHELL are defined. */
2069 if (home == NULL)
2070 emacs_abort ();
2071 if (shell == NULL)
2072 emacs_abort ();
2073 filename_from_utf16 (home, dflt_passwd.pw_dir);
2074 filename_from_utf16 (shell, dflt_passwd.pw_shell);
2075 }
2076 else
2077 {
2078 char *home = getenv ("HOME");
2079 char *shell = getenv ("SHELL");
2080
2081 if (home == NULL)
2082 emacs_abort ();
2083 if (shell == NULL)
2084 emacs_abort ();
2085 filename_from_ansi (home, dflt_passwd.pw_dir);
2086 filename_from_ansi (shell, dflt_passwd.pw_shell);
2087 }
2088
2089 xfree (buf);
2090 if (token)
2091 CloseHandle (token);
2092 }
2093
2094 int
2095 random (void)
2096 {
2097 /* rand () on NT gives us 15 random bits...hack together 30 bits. */
2098 return ((rand () << 15) | rand ());
2099 }
2100
2101 void
2102 srandom (int seed)
2103 {
2104 srand (seed);
2105 }
2106
2107 /* Return the maximum length in bytes of a multibyte character
2108 sequence encoded in the current ANSI codepage. This is required to
2109 correctly walk the encoded file names one character at a time. */
2110 static int
2111 max_filename_mbslen (void)
2112 {
2113 CPINFO cp_info;
2114
2115 codepage_for_filenames (&cp_info);
2116 return cp_info.MaxCharSize;
2117 }
2118
2119 /* Normalize filename by converting in-place all of its path
2120 separators to the separator specified by PATH_SEP. */
2121
2122 static void
2123 normalize_filename (register char *fp, char path_sep)
2124 {
2125 char *p2;
2126
2127 /* Always lower-case drive letters a-z, even if the filesystem
2128 preserves case in filenames.
2129 This is so filenames can be compared by string comparison
2130 functions that are case-sensitive. Even case-preserving filesystems
2131 do not distinguish case in drive letters. */
2132 p2 = fp + 1;
2133
2134 if (*p2 == ':' && *fp >= 'A' && *fp <= 'Z')
2135 {
2136 *fp += 'a' - 'A';
2137 fp += 2;
2138 }
2139
2140 while (*fp)
2141 {
2142 if ((*fp == '/' || *fp == '\\') && *fp != path_sep)
2143 *fp = path_sep;
2144 fp++;
2145 }
2146 }
2147
2148 /* Destructively turn backslashes into slashes. */
2149 void
2150 dostounix_filename (register char *p)
2151 {
2152 normalize_filename (p, '/');
2153 }
2154
2155 /* Destructively turn slashes into backslashes. */
2156 void
2157 unixtodos_filename (register char *p)
2158 {
2159 normalize_filename (p, '\\');
2160 }
2161
2162 /* Remove all CR's that are followed by a LF.
2163 (From msdos.c...probably should figure out a way to share it,
2164 although this code isn't going to ever change.) */
2165 static int
2166 crlf_to_lf (register int n, register unsigned char *buf)
2167 {
2168 unsigned char *np = buf;
2169 unsigned char *startp = buf;
2170 unsigned char *endp = buf + n;
2171
2172 if (n == 0)
2173 return n;
2174 while (buf < endp - 1)
2175 {
2176 if (*buf == 0x0d)
2177 {
2178 if (*(++buf) != 0x0a)
2179 *np++ = 0x0d;
2180 }
2181 else
2182 *np++ = *buf++;
2183 }
2184 if (buf < endp)
2185 *np++ = *buf++;
2186 return np - startp;
2187 }
2188
2189 /* Parse the root part of file name, if present. Return length and
2190 optionally store pointer to char after root. */
2191 static int
2192 parse_root (const char * name, const char ** pPath)
2193 {
2194 const char * start = name;
2195
2196 if (name == NULL)
2197 return 0;
2198
2199 /* find the root name of the volume if given */
2200 if (isalpha (name[0]) && name[1] == ':')
2201 {
2202 /* skip past drive specifier */
2203 name += 2;
2204 if (IS_DIRECTORY_SEP (name[0]))
2205 name++;
2206 }
2207 else if (IS_DIRECTORY_SEP (name[0]) && IS_DIRECTORY_SEP (name[1]))
2208 {
2209 int slashes = 2;
2210
2211 name += 2;
2212 do
2213 {
2214 if (IS_DIRECTORY_SEP (*name) && --slashes == 0)
2215 break;
2216 name++;
2217 }
2218 while ( *name );
2219 if (IS_DIRECTORY_SEP (name[0]))
2220 name++;
2221 }
2222
2223 if (pPath)
2224 *pPath = name;
2225
2226 return name - start;
2227 }
2228
2229 /* Get long base name for name; name is assumed to be absolute. */
2230 static int
2231 get_long_basename (char * name, char * buf, int size)
2232 {
2233 HANDLE dir_handle = INVALID_HANDLE_VALUE;
2234 char fname_utf8[MAX_UTF8_PATH];
2235 int len = 0;
2236 int cstatus = -1;
2237
2238 /* Must be valid filename, no wild cards or other invalid characters. */
2239 if (strpbrk (name, "*?|<>\""))
2240 return 0;
2241
2242 if (w32_unicode_filenames)
2243 {
2244 wchar_t fname_utf16[MAX_PATH];
2245 WIN32_FIND_DATAW find_data_wide;
2246
2247 filename_to_utf16 (name, fname_utf16);
2248 dir_handle = FindFirstFileW (fname_utf16, &find_data_wide);
2249 if (dir_handle != INVALID_HANDLE_VALUE)
2250 cstatus = filename_from_utf16 (find_data_wide.cFileName, fname_utf8);
2251 }
2252 else
2253 {
2254 char fname_ansi[MAX_PATH];
2255 WIN32_FIND_DATAA find_data_ansi;
2256
2257 filename_to_ansi (name, fname_ansi);
2258 /* If the ANSI name includes ? characters, it is not encodable
2259 in the ANSI codepage. In that case, we deliver the question
2260 marks to the caller; calling FindFirstFileA in this case
2261 could return some unrelated file name in the same
2262 directory. */
2263 if (_mbspbrk (fname_ansi, "?"))
2264 {
2265 /* Find the basename of fname_ansi. */
2266 char *p = strrchr (fname_ansi, '\\');
2267
2268 if (!p)
2269 p = fname_ansi;
2270 else
2271 p++;
2272 cstatus = filename_from_ansi (p, fname_utf8);
2273 }
2274 else
2275 {
2276 dir_handle = FindFirstFileA (fname_ansi, &find_data_ansi);
2277 if (dir_handle != INVALID_HANDLE_VALUE)
2278 cstatus = filename_from_ansi (find_data_ansi.cFileName, fname_utf8);
2279 }
2280 }
2281
2282 if (cstatus == 0 && (len = strlen (fname_utf8)) < size)
2283 memcpy (buf, fname_utf8, len + 1);
2284 else
2285 len = 0;
2286
2287 if (dir_handle != INVALID_HANDLE_VALUE)
2288 FindClose (dir_handle);
2289
2290 return len;
2291 }
2292
2293 /* Get long name for file, if possible (assumed to be absolute). */
2294 BOOL
2295 w32_get_long_filename (const char * name, char * buf, int size)
2296 {
2297 char * o = buf;
2298 char * p;
2299 const char * q;
2300 char full[ MAX_UTF8_PATH ];
2301 int len;
2302
2303 len = strlen (name);
2304 if (len >= MAX_UTF8_PATH)
2305 return FALSE;
2306
2307 /* Use local copy for destructive modification. */
2308 memcpy (full, name, len+1);
2309 unixtodos_filename (full);
2310
2311 /* Copy root part verbatim. */
2312 len = parse_root (full, (const char **)&p);
2313 memcpy (o, full, len);
2314 o += len;
2315 *o = '\0';
2316 size -= len;
2317
2318 while (p != NULL && *p)
2319 {
2320 q = p;
2321 p = strchr (q, '\\');
2322 if (p) *p = '\0';
2323 len = get_long_basename (full, o, size);
2324 if (len > 0)
2325 {
2326 o += len;
2327 size -= len;
2328 if (p != NULL)
2329 {
2330 *p++ = '\\';
2331 if (size < 2)
2332 return FALSE;
2333 *o++ = '\\';
2334 size--;
2335 *o = '\0';
2336 }
2337 }
2338 else
2339 return FALSE;
2340 }
2341
2342 return TRUE;
2343 }
2344
2345 unsigned int
2346 w32_get_short_filename (const char * name, char * buf, int size)
2347 {
2348 if (w32_unicode_filenames)
2349 {
2350 wchar_t name_utf16[MAX_PATH], short_name[MAX_PATH];
2351 unsigned int retval;
2352
2353 filename_to_utf16 (name, name_utf16);
2354 retval = GetShortPathNameW (name_utf16, short_name, size);
2355 if (retval && retval < size)
2356 filename_from_utf16 (short_name, buf);
2357 return retval;
2358 }
2359 else
2360 {
2361 char name_ansi[MAX_PATH];
2362
2363 filename_to_ansi (name, name_ansi);
2364 return GetShortPathNameA (name_ansi, buf, size);
2365 }
2366 }
2367
2368 /* Re-encode FILENAME, a UTF-8 encoded unibyte string, using the
2369 MS-Windows ANSI codepage. If FILENAME includes characters not
2370 supported by the ANSI codepage, return the 8+3 alias of FILENAME,
2371 if it exists. This is needed because the w32 build wants to
2372 support file names outside of the system locale, but image
2373 libraries typically don't support wide (a.k.a. "Unicode") APIs
2374 required for that. */
2375
2376 Lisp_Object
2377 ansi_encode_filename (Lisp_Object filename)
2378 {
2379 Lisp_Object encoded_filename;
2380 char fname[MAX_PATH];
2381
2382 filename_to_ansi (SSDATA (filename), fname);
2383 if (_mbspbrk (fname, "?"))
2384 {
2385 char shortname[MAX_PATH];
2386
2387 if (w32_get_short_filename (SDATA (filename), shortname, MAX_PATH))
2388 {
2389 dostounix_filename (shortname);
2390 encoded_filename = build_string (shortname);
2391 }
2392 else
2393 encoded_filename = build_unibyte_string (fname);
2394 }
2395 else
2396 encoded_filename = build_unibyte_string (fname);
2397 return encoded_filename;
2398 }
2399
2400 static int
2401 is_unc_volume (const char *filename)
2402 {
2403 const char *ptr = filename;
2404
2405 if (!IS_DIRECTORY_SEP (ptr[0]) || !IS_DIRECTORY_SEP (ptr[1]) || !ptr[2])
2406 return 0;
2407
2408 if (strpbrk (ptr + 2, "*?|<>\"\\/"))
2409 return 0;
2410
2411 return 1;
2412 }
2413
2414 /* Emulate the Posix unsetenv. */
2415 int
2416 unsetenv (const char *name)
2417 {
2418 char *var;
2419 size_t name_len;
2420
2421 if (name == NULL || *name == '\0' || strchr (name, '=') != NULL)
2422 {
2423 errno = EINVAL;
2424 return -1;
2425 }
2426 name_len = strlen (name);
2427 /* MS docs says an environment variable cannot be longer than 32K. */
2428 if (name_len > 32767)
2429 {
2430 errno = ENOMEM;
2431 return 0;
2432 }
2433 /* It is safe to use 'alloca' with 32K size, since the stack is at
2434 least 2MB, and we set it to 8MB in the link command line. */
2435 var = alloca (name_len + 2);
2436 strncpy (var, name, name_len);
2437 var[name_len++] = '=';
2438 var[name_len] = '\0';
2439 return _putenv (var);
2440 }
2441
2442 /* MS _putenv doesn't support removing a variable when the argument
2443 does not include the '=' character, so we fix that here. */
2444 int
2445 sys_putenv (char *str)
2446 {
2447 const char *const name_end = strchr (str, '=');
2448
2449 if (name_end == NULL)
2450 {
2451 /* Remove the variable from the environment. */
2452 return unsetenv (str);
2453 }
2454
2455 return _putenv (str);
2456 }
2457
2458 #define REG_ROOT "SOFTWARE\\GNU\\Emacs"
2459
2460 LPBYTE
2461 w32_get_resource (char *key, LPDWORD lpdwtype)
2462 {
2463 LPBYTE lpvalue;
2464 HKEY hrootkey = NULL;
2465 DWORD cbData;
2466
2467 /* Check both the current user and the local machine to see if
2468 we have any resources. */
2469
2470 if (RegOpenKeyEx (HKEY_CURRENT_USER, REG_ROOT, 0, KEY_READ, &hrootkey) == ERROR_SUCCESS)
2471 {
2472 lpvalue = NULL;
2473
2474 if (RegQueryValueEx (hrootkey, key, NULL, NULL, NULL, &cbData) == ERROR_SUCCESS
2475 && (lpvalue = xmalloc (cbData)) != NULL
2476 && RegQueryValueEx (hrootkey, key, NULL, lpdwtype, lpvalue, &cbData) == ERROR_SUCCESS)
2477 {
2478 RegCloseKey (hrootkey);
2479 return (lpvalue);
2480 }
2481
2482 xfree (lpvalue);
2483
2484 RegCloseKey (hrootkey);
2485 }
2486
2487 if (RegOpenKeyEx (HKEY_LOCAL_MACHINE, REG_ROOT, 0, KEY_READ, &hrootkey) == ERROR_SUCCESS)
2488 {
2489 lpvalue = NULL;
2490
2491 if (RegQueryValueEx (hrootkey, key, NULL, NULL, NULL, &cbData) == ERROR_SUCCESS
2492 && (lpvalue = xmalloc (cbData)) != NULL
2493 && RegQueryValueEx (hrootkey, key, NULL, lpdwtype, lpvalue, &cbData) == ERROR_SUCCESS)
2494 {
2495 RegCloseKey (hrootkey);
2496 return (lpvalue);
2497 }
2498
2499 xfree (lpvalue);
2500
2501 RegCloseKey (hrootkey);
2502 }
2503
2504 return (NULL);
2505 }
2506
2507 /* The argv[] array holds ANSI-encoded strings, and so this function
2508 works with ANS_encoded strings. */
2509 void
2510 init_environment (char ** argv)
2511 {
2512 static const char * const tempdirs[] = {
2513 "$TMPDIR", "$TEMP", "$TMP", "c:/"
2514 };
2515
2516 int i;
2517
2518 const int imax = ARRAYELTS (tempdirs);
2519
2520 /* Implementation note: This function explicitly works with ANSI
2521 file names, not with UTF-8 encoded file names. This is because
2522 this function pushes variables into the Emacs's environment, and
2523 the environment variables are always assumed to be in the
2524 locale-specific encoding. Do NOT call any functions that accept
2525 UTF-8 file names from this function! */
2526
2527 /* Make sure they have a usable $TMPDIR. Many Emacs functions use
2528 temporary files and assume "/tmp" if $TMPDIR is unset, which
2529 will break on DOS/Windows. Refuse to work if we cannot find
2530 a directory, not even "c:/", usable for that purpose. */
2531 for (i = 0; i < imax ; i++)
2532 {
2533 const char *tmp = tempdirs[i];
2534
2535 if (*tmp == '$')
2536 tmp = getenv (tmp + 1);
2537 /* Note that `access' can lie to us if the directory resides on a
2538 read-only filesystem, like CD-ROM or a write-protected floppy.
2539 The only way to be really sure is to actually create a file and
2540 see if it succeeds. But I think that's too much to ask. */
2541
2542 /* MSVCRT's _access crashes with D_OK, so we use our replacement. */
2543 if (tmp && sys_access (tmp, D_OK) == 0)
2544 {
2545 char * var = alloca (strlen (tmp) + 8);
2546 sprintf (var, "TMPDIR=%s", tmp);
2547 _putenv (strdup (var));
2548 break;
2549 }
2550 }
2551 if (i >= imax)
2552 cmd_error_internal
2553 (Fcons (Qerror,
2554 Fcons (build_string ("no usable temporary directories found!!"),
2555 Qnil)),
2556 "While setting TMPDIR: ");
2557
2558 /* Check for environment variables and use registry settings if they
2559 don't exist. Fallback on default values where applicable. */
2560 {
2561 int i;
2562 LPBYTE lpval;
2563 DWORD dwType;
2564 char locale_name[32];
2565 char default_home[MAX_PATH];
2566 int appdata = 0;
2567
2568 static const struct env_entry
2569 {
2570 char * name;
2571 char * def_value;
2572 } dflt_envvars[] =
2573 {
2574 /* If the default value is NULL, we will use the value from the
2575 outside environment or the Registry, but will not push the
2576 variable into the Emacs environment if it is defined neither
2577 in the Registry nor in the outside environment. */
2578 {"HOME", "C:/"},
2579 {"PRELOAD_WINSOCK", NULL},
2580 {"emacs_dir", "C:/emacs"},
2581 {"EMACSLOADPATH", NULL},
2582 {"SHELL", "cmdproxy.exe"}, /* perhaps it is somewhere on PATH */
2583 {"EMACSDATA", NULL},
2584 {"EMACSPATH", NULL},
2585 {"INFOPATH", NULL},
2586 {"EMACSDOC", NULL},
2587 {"TERM", "cmd"},
2588 {"LANG", NULL},
2589 };
2590
2591 #define N_ENV_VARS ARRAYELTS (dflt_envvars)
2592
2593 /* We need to copy dflt_envvars[] and work on the copy because we
2594 don't want the dumped Emacs to inherit the values of
2595 environment variables we saw during dumping (which could be on
2596 a different system). The defaults above must be left intact. */
2597 struct env_entry env_vars[N_ENV_VARS];
2598
2599 for (i = 0; i < N_ENV_VARS; i++)
2600 env_vars[i] = dflt_envvars[i];
2601
2602 /* For backwards compatibility, check if a .emacs file exists in C:/
2603 If not, then we can try to default to the appdata directory under the
2604 user's profile, which is more likely to be writable. */
2605 if (sys_access ("C:/.emacs", F_OK) != 0)
2606 {
2607 HRESULT profile_result;
2608 /* Dynamically load ShGetFolderPath, as it won't exist on versions
2609 of Windows 95 and NT4 that have not been updated to include
2610 MSIE 5. */
2611 ShGetFolderPath_fn get_folder_path;
2612 get_folder_path = (ShGetFolderPath_fn)
2613 GetProcAddress (GetModuleHandle ("shell32.dll"), "SHGetFolderPathA");
2614
2615 if (get_folder_path != NULL)
2616 {
2617 profile_result = get_folder_path (NULL, CSIDL_APPDATA, NULL,
2618 0, default_home);
2619
2620 /* If we can't get the appdata dir, revert to old behavior. */
2621 if (profile_result == S_OK)
2622 {
2623 env_vars[0].def_value = default_home;
2624 appdata = 1;
2625 }
2626 }
2627 }
2628
2629 /* Get default locale info and use it for LANG. */
2630 if (GetLocaleInfo (LOCALE_USER_DEFAULT,
2631 LOCALE_SABBREVLANGNAME | LOCALE_USE_CP_ACP,
2632 locale_name, sizeof (locale_name)))
2633 {
2634 for (i = 0; i < N_ENV_VARS; i++)
2635 {
2636 if (strcmp (env_vars[i].name, "LANG") == 0)
2637 {
2638 env_vars[i].def_value = locale_name;
2639 break;
2640 }
2641 }
2642 }
2643
2644 #define SET_ENV_BUF_SIZE (4 * MAX_PATH) /* to cover EMACSLOADPATH */
2645
2646 /* Treat emacs_dir specially: set it unconditionally based on our
2647 location. */
2648 {
2649 char *p;
2650 char modname[MAX_PATH];
2651
2652 if (!GetModuleFileNameA (NULL, modname, MAX_PATH))
2653 emacs_abort ();
2654 if ((p = _mbsrchr (modname, '\\')) == NULL)
2655 emacs_abort ();
2656 *p = 0;
2657
2658 if ((p = _mbsrchr (modname, '\\'))
2659 /* From bin means installed Emacs, from src means uninstalled. */
2660 && (xstrcasecmp (p, "\\bin") == 0 || xstrcasecmp (p, "\\src") == 0))
2661 {
2662 char buf[SET_ENV_BUF_SIZE];
2663 int within_build_tree = xstrcasecmp (p, "\\src") == 0;
2664
2665 *p = 0;
2666 for (p = modname; *p; p = CharNext (p))
2667 if (*p == '\\') *p = '/';
2668
2669 _snprintf (buf, sizeof (buf)-1, "emacs_dir=%s", modname);
2670 _putenv (strdup (buf));
2671 /* If we are running from the Posix-like build tree, define
2672 SHELL to point to our own cmdproxy. The loop below will
2673 then disregard PATH_EXEC and the default value. */
2674 if (within_build_tree)
2675 {
2676 _snprintf (buf, sizeof (buf) - 1,
2677 "SHELL=%s/nt/cmdproxy.exe", modname);
2678 _putenv (strdup (buf));
2679 }
2680 }
2681 }
2682
2683 for (i = 0; i < N_ENV_VARS; i++)
2684 {
2685 if (!getenv (env_vars[i].name))
2686 {
2687 int dont_free = 0;
2688 char bufc[SET_ENV_BUF_SIZE];
2689
2690 if ((lpval = w32_get_resource (env_vars[i].name, &dwType)) == NULL
2691 /* Also ignore empty environment variables. */
2692 || *lpval == 0)
2693 {
2694 xfree (lpval);
2695 dont_free = 1;
2696 if (strcmp (env_vars[i].name, "SHELL") == 0)
2697 {
2698 /* Look for cmdproxy.exe in every directory in
2699 PATH_EXEC. FIXME: This does not find cmdproxy
2700 in nt/ when we run uninstalled. */
2701 char fname[MAX_PATH];
2702 const char *pstart = PATH_EXEC, *pend;
2703
2704 do {
2705 pend = _mbschr (pstart, ';');
2706 if (!pend)
2707 pend = pstart + strlen (pstart);
2708 /* Be defensive against series of ;;; characters. */
2709 if (pend > pstart)
2710 {
2711 strncpy (fname, pstart, pend - pstart);
2712 fname[pend - pstart] = '/';
2713 strcpy (&fname[pend - pstart + 1], "cmdproxy.exe");
2714 ExpandEnvironmentStrings ((LPSTR) fname, bufc,
2715 sizeof (bufc));
2716 if (sys_access (bufc, F_OK) == 0)
2717 {
2718 lpval = bufc;
2719 dwType = REG_SZ;
2720 break;
2721 }
2722 }
2723 if (*pend)
2724 pstart = pend + 1;
2725 else
2726 pstart = pend;
2727 if (!*pstart)
2728 {
2729 /* If not found in any directory, use the
2730 default as the last resort. */
2731 lpval = env_vars[i].def_value;
2732 dwType = REG_EXPAND_SZ;
2733 }
2734 } while (*pstart);
2735 }
2736 else
2737 {
2738 lpval = env_vars[i].def_value;
2739 dwType = REG_EXPAND_SZ;
2740 }
2741 if (strcmp (env_vars[i].name, "HOME") == 0 && !appdata)
2742 Vdelayed_warnings_list
2743 = Fcons (listn (CONSTYPE_HEAP, 2,
2744 intern ("initialization"),
2745 build_string ("Setting HOME to C:\\ by default is deprecated")),
2746 Vdelayed_warnings_list);
2747 }
2748
2749 if (lpval)
2750 {
2751 char buf1[SET_ENV_BUF_SIZE], buf2[SET_ENV_BUF_SIZE];
2752
2753 if (dwType == REG_EXPAND_SZ)
2754 ExpandEnvironmentStrings ((LPSTR) lpval, buf1, sizeof (buf1));
2755 else if (dwType == REG_SZ)
2756 strcpy (buf1, lpval);
2757 if (dwType == REG_EXPAND_SZ || dwType == REG_SZ)
2758 {
2759 _snprintf (buf2, sizeof (buf2)-1, "%s=%s", env_vars[i].name,
2760 buf1);
2761 _putenv (strdup (buf2));
2762 }
2763
2764 if (!dont_free)
2765 xfree (lpval);
2766 }
2767 }
2768 }
2769 }
2770
2771 /* Rebuild system configuration to reflect invoking system. */
2772 Vsystem_configuration = build_string (EMACS_CONFIGURATION);
2773
2774 /* Another special case: on NT, the PATH variable is actually named
2775 "Path" although cmd.exe (perhaps NT itself) arranges for
2776 environment variable lookup and setting to be case insensitive.
2777 However, Emacs assumes a fully case sensitive environment, so we
2778 need to change "Path" to "PATH" to match the expectations of
2779 various elisp packages. We do this by the sneaky method of
2780 modifying the string in the C runtime environ entry.
2781
2782 The same applies to COMSPEC. */
2783 {
2784 char ** envp;
2785
2786 for (envp = environ; *envp; envp++)
2787 if (_strnicmp (*envp, "PATH=", 5) == 0)
2788 memcpy (*envp, "PATH=", 5);
2789 else if (_strnicmp (*envp, "COMSPEC=", 8) == 0)
2790 memcpy (*envp, "COMSPEC=", 8);
2791 }
2792
2793 /* Remember the initial working directory for getcwd. */
2794 /* FIXME: Do we need to resolve possible symlinks in startup_dir?
2795 Does it matter anywhere in Emacs? */
2796 if (w32_unicode_filenames)
2797 {
2798 wchar_t wstartup_dir[MAX_PATH];
2799
2800 if (!GetCurrentDirectoryW (MAX_PATH, wstartup_dir))
2801 emacs_abort ();
2802 filename_from_utf16 (wstartup_dir, startup_dir);
2803 }
2804 else
2805 {
2806 char astartup_dir[MAX_PATH];
2807
2808 if (!GetCurrentDirectoryA (MAX_PATH, astartup_dir))
2809 emacs_abort ();
2810 filename_from_ansi (astartup_dir, startup_dir);
2811 }
2812
2813 {
2814 static char modname[MAX_PATH];
2815
2816 if (!GetModuleFileNameA (NULL, modname, MAX_PATH))
2817 emacs_abort ();
2818 argv[0] = modname;
2819 }
2820
2821 /* Determine if there is a middle mouse button, to allow parse_button
2822 to decide whether right mouse events should be mouse-2 or
2823 mouse-3. */
2824 w32_num_mouse_buttons = GetSystemMetrics (SM_CMOUSEBUTTONS);
2825
2826 init_user_info ();
2827 }
2828
2829 /* Called from expand-file-name when default-directory is not a string. */
2830
2831 char *
2832 emacs_root_dir (void)
2833 {
2834 static char root_dir[MAX_UTF8_PATH];
2835 const char *p;
2836
2837 p = getenv ("emacs_dir");
2838 if (p == NULL)
2839 emacs_abort ();
2840 filename_from_ansi (p, root_dir);
2841 root_dir[parse_root (root_dir, NULL)] = '\0';
2842 dostounix_filename (root_dir);
2843 return root_dir;
2844 }
2845
2846 #include <sys/timeb.h>
2847
2848 /* Emulate gettimeofday (Ulrich Leodolter, 1/11/95). */
2849 int
2850 gettimeofday (struct timeval *__restrict tv, struct timezone *__restrict tz)
2851 {
2852 struct _timeb tb;
2853 _ftime (&tb);
2854
2855 tv->tv_sec = tb.time;
2856 tv->tv_usec = tb.millitm * 1000L;
2857 /* Implementation note: _ftime sometimes doesn't update the dstflag
2858 according to the new timezone when the system timezone is
2859 changed. We could fix that by using GetSystemTime and
2860 GetTimeZoneInformation, but that doesn't seem necessary, since
2861 Emacs always calls gettimeofday with the 2nd argument NULL (see
2862 current_emacs_time). */
2863 if (tz)
2864 {
2865 tz->tz_minuteswest = tb.timezone; /* minutes west of Greenwich */
2866 tz->tz_dsttime = tb.dstflag; /* type of dst correction */
2867 }
2868 return 0;
2869 }
2870
2871 /* Emulate fdutimens. */
2872
2873 /* Set the access and modification time stamps of FD (a.k.a. FILE) to be
2874 TIMESPEC[0] and TIMESPEC[1], respectively.
2875 FD must be either negative -- in which case it is ignored --
2876 or a file descriptor that is open on FILE.
2877 If FD is nonnegative, then FILE can be NULL, which means
2878 use just futimes instead of utimes.
2879 If TIMESPEC is null, FAIL.
2880 Return 0 on success, -1 (setting errno) on failure. */
2881
2882 int
2883 fdutimens (int fd, char const *file, struct timespec const timespec[2])
2884 {
2885 if (!timespec)
2886 {
2887 errno = ENOSYS;
2888 return -1;
2889 }
2890 if (fd < 0 && !file)
2891 {
2892 errno = EBADF;
2893 return -1;
2894 }
2895 /* _futime's prototype defines 2nd arg as having the type 'struct
2896 _utimbuf', while utime needs to accept 'struct utimbuf' for
2897 compatibility with Posix. So we need to use 2 different (but
2898 equivalent) types to avoid compiler warnings, sigh. */
2899 if (fd >= 0)
2900 {
2901 struct _utimbuf _ut;
2902
2903 _ut.actime = timespec[0].tv_sec;
2904 _ut.modtime = timespec[1].tv_sec;
2905 return _futime (fd, &_ut);
2906 }
2907 else
2908 {
2909 struct utimbuf ut;
2910
2911 ut.actime = timespec[0].tv_sec;
2912 ut.modtime = timespec[1].tv_sec;
2913 /* Call 'utime', which is implemented below, not the MS library
2914 function, which fails on directories. */
2915 return utime (file, &ut);
2916 }
2917 }
2918
2919
2920 /* ------------------------------------------------------------------------- */
2921 /* IO support and wrapper functions for the Windows API. */
2922 /* ------------------------------------------------------------------------- */
2923
2924 /* Place a wrapper around the MSVC version of ctime. It returns NULL
2925 on network directories, so we handle that case here.
2926 (Ulrich Leodolter, 1/11/95). */
2927 char *
2928 sys_ctime (const time_t *t)
2929 {
2930 char *str = (char *) ctime (t);
2931 return (str ? str : "Sun Jan 01 00:00:00 1970");
2932 }
2933
2934 /* Emulate sleep...we could have done this with a define, but that
2935 would necessitate including windows.h in the files that used it.
2936 This is much easier. */
2937 void
2938 sys_sleep (int seconds)
2939 {
2940 Sleep (seconds * 1000);
2941 }
2942
2943 /* Internal MSVC functions for low-level descriptor munging */
2944 extern int __cdecl _set_osfhnd (int fd, long h);
2945 extern int __cdecl _free_osfhnd (int fd);
2946
2947 /* parallel array of private info on file handles */
2948 filedesc fd_info [ MAXDESC ];
2949
2950 typedef struct volume_info_data {
2951 struct volume_info_data * next;
2952
2953 /* time when info was obtained */
2954 DWORD timestamp;
2955
2956 /* actual volume info */
2957 char * root_dir;
2958 DWORD serialnum;
2959 DWORD maxcomp;
2960 DWORD flags;
2961 char * name;
2962 char * type;
2963 } volume_info_data;
2964
2965 /* Global referenced by various functions. */
2966 static volume_info_data volume_info;
2967
2968 /* Vector to indicate which drives are local and fixed (for which cached
2969 data never expires). */
2970 static BOOL fixed_drives[26];
2971
2972 /* Consider cached volume information to be stale if older than 10s,
2973 at least for non-local drives. Info for fixed drives is never stale. */
2974 #define DRIVE_INDEX( c ) ( (c) <= 'Z' ? (c) - 'A' : (c) - 'a' )
2975 #define VOLINFO_STILL_VALID( root_dir, info ) \
2976 ( ( isalpha (root_dir[0]) && \
2977 fixed_drives[ DRIVE_INDEX (root_dir[0]) ] ) \
2978 || GetTickCount () - info->timestamp < 10000 )
2979
2980 /* Cache support functions. */
2981
2982 /* Simple linked list with linear search is sufficient. */
2983 static volume_info_data *volume_cache = NULL;
2984
2985 static volume_info_data *
2986 lookup_volume_info (char * root_dir)
2987 {
2988 volume_info_data * info;
2989
2990 for (info = volume_cache; info; info = info->next)
2991 if (xstrcasecmp (info->root_dir, root_dir) == 0)
2992 break;
2993 return info;
2994 }
2995
2996 static void
2997 add_volume_info (char * root_dir, volume_info_data * info)
2998 {
2999 info->root_dir = xstrdup (root_dir);
3000 unixtodos_filename (info->root_dir);
3001 info->next = volume_cache;
3002 volume_cache = info;
3003 }
3004
3005
3006 /* Wrapper for GetVolumeInformation, which uses caching to avoid
3007 performance penalty (~2ms on 486 for local drives, 7.5ms for local
3008 cdrom drive, ~5-10ms or more for remote drives on LAN). */
3009 static volume_info_data *
3010 GetCachedVolumeInformation (char * root_dir)
3011 {
3012 volume_info_data * info;
3013 char default_root[ MAX_UTF8_PATH ];
3014 char name[MAX_PATH+1];
3015 char type[MAX_PATH+1];
3016
3017 /* NULL for root_dir means use root from current directory. */
3018 if (root_dir == NULL)
3019 {
3020 if (w32_unicode_filenames)
3021 {
3022 wchar_t curdirw[MAX_PATH];
3023
3024 if (GetCurrentDirectoryW (MAX_PATH, curdirw) == 0)
3025 return NULL;
3026 filename_from_utf16 (curdirw, default_root);
3027 }
3028 else
3029 {
3030 char curdira[MAX_PATH];
3031
3032 if (GetCurrentDirectoryA (MAX_PATH, curdira) == 0)
3033 return NULL;
3034 filename_from_ansi (curdira, default_root);
3035 }
3036 parse_root (default_root, (const char **)&root_dir);
3037 *root_dir = 0;
3038 root_dir = default_root;
3039 }
3040
3041 /* Local fixed drives can be cached permanently. Removable drives
3042 cannot be cached permanently, since the volume name and serial
3043 number (if nothing else) can change. Remote drives should be
3044 treated as if they are removable, since there is no sure way to
3045 tell whether they are or not. Also, the UNC association of drive
3046 letters mapped to remote volumes can be changed at any time (even
3047 by other processes) without notice.
3048
3049 As a compromise, so we can benefit from caching info for remote
3050 volumes, we use a simple expiry mechanism to invalidate cache
3051 entries that are more than ten seconds old. */
3052
3053 #if 0
3054 /* No point doing this, because WNetGetConnection is even slower than
3055 GetVolumeInformation, consistently taking ~50ms on a 486 (FWIW,
3056 GetDriveType is about the only call of this type which does not
3057 involve network access, and so is extremely quick). */
3058
3059 /* Map drive letter to UNC if remote. */
3060 if (isalpha (root_dir[0]) && !fixed[DRIVE_INDEX (root_dir[0])])
3061 {
3062 char remote_name[ 256 ];
3063 char drive[3] = { root_dir[0], ':' };
3064
3065 if (WNetGetConnection (drive, remote_name, sizeof (remote_name))
3066 == NO_ERROR)
3067 /* do something */ ;
3068 }
3069 #endif
3070
3071 info = lookup_volume_info (root_dir);
3072
3073 if (info == NULL || ! VOLINFO_STILL_VALID (root_dir, info))
3074 {
3075 DWORD serialnum;
3076 DWORD maxcomp;
3077 DWORD flags;
3078
3079 /* Info is not cached, or is stale. */
3080 if (w32_unicode_filenames)
3081 {
3082 wchar_t root_w[MAX_PATH];
3083 wchar_t name_w[MAX_PATH+1];
3084 wchar_t type_w[MAX_PATH+1];
3085
3086 filename_to_utf16 (root_dir, root_w);
3087 if (!GetVolumeInformationW (root_w,
3088 name_w, sizeof (name_w),
3089 &serialnum,
3090 &maxcomp,
3091 &flags,
3092 type_w, sizeof (type_w)))
3093 return NULL;
3094 /* Hmm... not really 100% correct, as these 2 are not file
3095 names... */
3096 filename_from_utf16 (name_w, name);
3097 filename_from_utf16 (type_w, type);
3098 }
3099 else
3100 {
3101 char root_a[MAX_PATH];
3102 char name_a[MAX_PATH+1];
3103 char type_a[MAX_PATH+1];
3104
3105 filename_to_ansi (root_dir, root_a);
3106 if (!GetVolumeInformationA (root_a,
3107 name_a, sizeof (name_a),
3108 &serialnum,
3109 &maxcomp,
3110 &flags,
3111 type_a, sizeof (type_a)))
3112 return NULL;
3113 filename_from_ansi (name_a, name);
3114 filename_from_ansi (type_a, type);
3115 }
3116
3117 /* Cache the volume information for future use, overwriting existing
3118 entry if present. */
3119 if (info == NULL)
3120 {
3121 info = xmalloc (sizeof (volume_info_data));
3122 add_volume_info (root_dir, info);
3123 }
3124 else
3125 {
3126 xfree (info->name);
3127 xfree (info->type);
3128 }
3129
3130 info->name = xstrdup (name);
3131 unixtodos_filename (info->name);
3132 info->serialnum = serialnum;
3133 info->maxcomp = maxcomp;
3134 info->flags = flags;
3135 info->type = xstrdup (type);
3136 info->timestamp = GetTickCount ();
3137 }
3138
3139 return info;
3140 }
3141
3142 /* Get information on the volume where NAME is held; set path pointer to
3143 start of pathname in NAME (past UNC header\volume header if present),
3144 if pPath is non-NULL.
3145
3146 Note: if NAME includes symlinks, the information is for the volume
3147 of the symlink, not of its target. That's because, even though
3148 GetVolumeInformation returns information about the symlink target
3149 of its argument, we only pass the root directory to
3150 GetVolumeInformation, not the full NAME. */
3151 static int
3152 get_volume_info (const char * name, const char ** pPath)
3153 {
3154 char temp[MAX_UTF8_PATH];
3155 char *rootname = NULL; /* default to current volume */
3156 volume_info_data * info;
3157 int root_len = parse_root (name, pPath);
3158
3159 if (name == NULL)
3160 return FALSE;
3161
3162 /* Copy the root name of the volume, if given. */
3163 if (root_len)
3164 {
3165 strncpy (temp, name, root_len);
3166 temp[root_len] = '\0';
3167 unixtodos_filename (temp);
3168 rootname = temp;
3169 }
3170
3171 info = GetCachedVolumeInformation (rootname);
3172 if (info != NULL)
3173 {
3174 /* Set global referenced by other functions. */
3175 volume_info = *info;
3176 return TRUE;
3177 }
3178 return FALSE;
3179 }
3180
3181 /* Determine if volume is FAT format (ie. only supports short 8.3
3182 names); also set path pointer to start of pathname in name, if
3183 pPath is non-NULL. */
3184 static int
3185 is_fat_volume (const char * name, const char ** pPath)
3186 {
3187 if (get_volume_info (name, pPath))
3188 return (volume_info.maxcomp == 12);
3189 return FALSE;
3190 }
3191
3192 /* Convert all slashes in a filename to backslashes, and map filename
3193 to a valid 8.3 name if necessary. The result is a pointer to a
3194 static buffer, so CAVEAT EMPTOR! */
3195 const char *
3196 map_w32_filename (const char * name, const char ** pPath)
3197 {
3198 static char shortname[MAX_UTF8_PATH];
3199 char * str = shortname;
3200 char c;
3201 char * path;
3202 const char * save_name = name;
3203
3204 if (strlen (name) >= sizeof (shortname))
3205 {
3206 /* Return a filename which will cause callers to fail. */
3207 strcpy (shortname, "?");
3208 return shortname;
3209 }
3210
3211 if (is_fat_volume (name, (const char **)&path)) /* truncate to 8.3 */
3212 {
3213 register int left = 8; /* maximum number of chars in part */
3214 register int extn = 0; /* extension added? */
3215 register int dots = 2; /* maximum number of dots allowed */
3216
3217 while (name < path)
3218 *str++ = *name++; /* skip past UNC header */
3219
3220 while ((c = *name++))
3221 {
3222 switch ( c )
3223 {
3224 case ':':
3225 case '\\':
3226 case '/':
3227 *str++ = (c == ':' ? ':' : '\\');
3228 extn = 0; /* reset extension flags */
3229 dots = 2; /* max 2 dots */
3230 left = 8; /* max length 8 for main part */
3231 break;
3232 case '.':
3233 if ( dots )
3234 {
3235 /* Convert path components of the form .xxx to _xxx,
3236 but leave . and .. as they are. This allows .emacs
3237 to be read as _emacs, for example. */
3238
3239 if (! *name ||
3240 *name == '.' ||
3241 IS_DIRECTORY_SEP (*name))
3242 {
3243 *str++ = '.';
3244 dots--;
3245 }
3246 else
3247 {
3248 *str++ = '_';
3249 left--;
3250 dots = 0;
3251 }
3252 }
3253 else if ( !extn )
3254 {
3255 *str++ = '.';
3256 extn = 1; /* we've got an extension */
3257 left = 3; /* 3 chars in extension */
3258 }
3259 else
3260 {
3261 /* any embedded dots after the first are converted to _ */
3262 *str++ = '_';
3263 }
3264 break;
3265 case '~':
3266 case '#': /* don't lose these, they're important */
3267 if ( ! left )
3268 str[-1] = c; /* replace last character of part */
3269 /* FALLTHRU */
3270 default:
3271 if ( left && 'A' <= c && c <= 'Z' )
3272 {
3273 *str++ = tolower (c); /* map to lower case (looks nicer) */
3274 left--;
3275 dots = 0; /* started a path component */
3276 }
3277 break;
3278 }
3279 }
3280 *str = '\0';
3281 }
3282 else
3283 {
3284 strcpy (shortname, name);
3285 unixtodos_filename (shortname);
3286 }
3287
3288 if (pPath)
3289 *pPath = shortname + (path - save_name);
3290
3291 return shortname;
3292 }
3293
3294 static int
3295 is_exec (const char * name)
3296 {
3297 char * p = strrchr (name, '.');
3298 return
3299 (p != NULL
3300 && (xstrcasecmp (p, ".exe") == 0 ||
3301 xstrcasecmp (p, ".com") == 0 ||
3302 xstrcasecmp (p, ".bat") == 0 ||
3303 xstrcasecmp (p, ".cmd") == 0));
3304 }
3305
3306 /* Emulate the Unix directory procedures opendir, closedir, and
3307 readdir. We rename them to sys_* names because some versions of
3308 MinGW startup code call opendir and readdir to glob wildcards, and
3309 the code that calls them doesn't grok UTF-8 encoded file names we
3310 produce in dirent->d_name[]. */
3311
3312 struct dirent dir_static; /* simulated directory contents */
3313 static HANDLE dir_find_handle = INVALID_HANDLE_VALUE;
3314 static int dir_is_fat;
3315 static char dir_pathname[MAX_UTF8_PATH];
3316 static WIN32_FIND_DATAW dir_find_data_w;
3317 static WIN32_FIND_DATAA dir_find_data_a;
3318 #define DIR_FIND_DATA_W 1
3319 #define DIR_FIND_DATA_A 2
3320 static int last_dir_find_data = -1;
3321
3322 /* Support shares on a network resource as subdirectories of a read-only
3323 root directory. */
3324 static HANDLE wnet_enum_handle = INVALID_HANDLE_VALUE;
3325 static HANDLE open_unc_volume (const char *);
3326 static void *read_unc_volume (HANDLE, wchar_t *, char *, int);
3327 static void close_unc_volume (HANDLE);
3328
3329 DIR *
3330 sys_opendir (const char *filename)
3331 {
3332 DIR *dirp;
3333
3334 /* Opening is done by FindFirstFile. However, a read is inherent to
3335 this operation, so we defer the open until read time. */
3336
3337 if (dir_find_handle != INVALID_HANDLE_VALUE)
3338 return NULL;
3339 if (wnet_enum_handle != INVALID_HANDLE_VALUE)
3340 return NULL;
3341
3342 /* Note: We don't support traversal of UNC volumes via symlinks.
3343 Doing so would mean punishing 99.99% of use cases by resolving
3344 all the possible symlinks in FILENAME, recursively. */
3345 if (is_unc_volume (filename))
3346 {
3347 wnet_enum_handle = open_unc_volume (filename);
3348 if (wnet_enum_handle == INVALID_HANDLE_VALUE)
3349 return NULL;
3350 }
3351
3352 if (!(dirp = (DIR *) malloc (sizeof (DIR))))
3353 return NULL;
3354
3355 dirp->dd_fd = 0;
3356 dirp->dd_loc = 0;
3357 dirp->dd_size = 0;
3358
3359 strncpy (dir_pathname, map_w32_filename (filename, NULL), MAX_UTF8_PATH - 1);
3360 dir_pathname[MAX_UTF8_PATH - 1] = '\0';
3361 /* Note: We don't support symlinks to file names on FAT volumes.
3362 Doing so would mean punishing 99.99% of use cases by resolving
3363 all the possible symlinks in FILENAME, recursively. */
3364 dir_is_fat = is_fat_volume (filename, NULL);
3365
3366 return dirp;
3367 }
3368
3369 void
3370 sys_closedir (DIR *dirp)
3371 {
3372 /* If we have a find-handle open, close it. */
3373 if (dir_find_handle != INVALID_HANDLE_VALUE)
3374 {
3375 FindClose (dir_find_handle);
3376 dir_find_handle = INVALID_HANDLE_VALUE;
3377 }
3378 else if (wnet_enum_handle != INVALID_HANDLE_VALUE)
3379 {
3380 close_unc_volume (wnet_enum_handle);
3381 wnet_enum_handle = INVALID_HANDLE_VALUE;
3382 }
3383 xfree ((char *) dirp);
3384 }
3385
3386 struct dirent *
3387 sys_readdir (DIR *dirp)
3388 {
3389 int downcase = !NILP (Vw32_downcase_file_names);
3390
3391 if (wnet_enum_handle != INVALID_HANDLE_VALUE)
3392 {
3393 if (!read_unc_volume (wnet_enum_handle,
3394 dir_find_data_w.cFileName,
3395 dir_find_data_a.cFileName,
3396 MAX_PATH))
3397 return NULL;
3398 }
3399 /* If we aren't dir_finding, do a find-first, otherwise do a find-next. */
3400 else if (dir_find_handle == INVALID_HANDLE_VALUE)
3401 {
3402 char filename[MAX_UTF8_PATH];
3403 int ln;
3404 bool last_slash = true;
3405
3406 /* Note: We don't need to worry about dir_pathname being longer
3407 than MAX_UTF8_PATH, as sys_opendir already took care of that
3408 when it called map_w32_filename: that function will put a "?"
3409 in its return value in that case, thus failing all the calls
3410 below. */
3411 strcpy (filename, dir_pathname);
3412 ln = strlen (filename);
3413 if (!IS_DIRECTORY_SEP (filename[ln - 1]))
3414 last_slash = false;
3415
3416 /* Note: No need to resolve symlinks in FILENAME, because
3417 FindFirst opens the directory that is the target of a
3418 symlink. */
3419 if (w32_unicode_filenames)
3420 {
3421 wchar_t fnw[MAX_PATH + 2];
3422
3423 filename_to_utf16 (filename, fnw);
3424 if (!last_slash)
3425 wcscat (fnw, L"\\");
3426 wcscat (fnw, L"*");
3427 dir_find_handle = FindFirstFileW (fnw, &dir_find_data_w);
3428 }
3429 else
3430 {
3431 char fna[MAX_PATH + 2];
3432
3433 filename_to_ansi (filename, fna);
3434 if (!last_slash)
3435 strcat (fna, "\\");
3436 strcat (fna, "*");
3437 /* If FILENAME is not representable by the current ANSI
3438 codepage, we don't want FindFirstFileA to interpret the
3439 '?' characters as a wildcard. */
3440 if (_mbspbrk (fna, "?"))
3441 dir_find_handle = INVALID_HANDLE_VALUE;
3442 else
3443 dir_find_handle = FindFirstFileA (fna, &dir_find_data_a);
3444 }
3445
3446 if (dir_find_handle == INVALID_HANDLE_VALUE)
3447 {
3448 /* Any changes in the value of errno here should be in sync
3449 with what directory_files_internal does when it calls
3450 readdir. */
3451 switch (GetLastError ())
3452 {
3453 /* Windows uses this value when FindFirstFile finds no
3454 files that match the wildcard. This is not supposed
3455 to happen, since our wildcard is "*", but just in
3456 case, if there's some weird empty directory with not
3457 even "." and ".." entries... */
3458 case ERROR_FILE_NOT_FOUND:
3459 errno = 0;
3460 /* FALLTHRU */
3461 default:
3462 break;
3463 case ERROR_ACCESS_DENIED:
3464 case ERROR_NETWORK_ACCESS_DENIED:
3465 errno = EACCES;
3466 break;
3467 case ERROR_PATH_NOT_FOUND:
3468 case ERROR_INVALID_DRIVE:
3469 case ERROR_NOT_READY:
3470 case ERROR_BAD_NETPATH:
3471 case ERROR_BAD_NET_NAME:
3472 errno = ENOENT;
3473 break;
3474 }
3475 return NULL;
3476 }
3477 }
3478 else if (w32_unicode_filenames)
3479 {
3480 if (!FindNextFileW (dir_find_handle, &dir_find_data_w))
3481 {
3482 errno = 0;
3483 return NULL;
3484 }
3485 }
3486 else
3487 {
3488 if (!FindNextFileA (dir_find_handle, &dir_find_data_a))
3489 {
3490 errno = 0;
3491 return NULL;
3492 }
3493 }
3494
3495 /* Emacs never uses this value, so don't bother making it match
3496 value returned by stat(). */
3497 dir_static.d_ino = 1;
3498
3499 if (w32_unicode_filenames)
3500 {
3501 if (downcase || dir_is_fat)
3502 {
3503 wchar_t tem[MAX_PATH];
3504
3505 wcscpy (tem, dir_find_data_w.cFileName);
3506 CharLowerW (tem);
3507 filename_from_utf16 (tem, dir_static.d_name);
3508 }
3509 else
3510 filename_from_utf16 (dir_find_data_w.cFileName, dir_static.d_name);
3511 last_dir_find_data = DIR_FIND_DATA_W;
3512 }
3513 else
3514 {
3515 char tem[MAX_PATH];
3516
3517 /* If the file name in cFileName[] includes `?' characters, it
3518 means the original file name used characters that cannot be
3519 represented by the current ANSI codepage. To avoid total
3520 lossage, retrieve the short 8+3 alias of the long file
3521 name. */
3522 if (_mbspbrk (dir_find_data_a.cFileName, "?"))
3523 {
3524 strcpy (tem, dir_find_data_a.cAlternateFileName);
3525 /* 8+3 aliases are returned in all caps, which could break
3526 various alists that look at filenames' extensions. */
3527 downcase = 1;
3528 }
3529 else if (downcase || dir_is_fat)
3530 strcpy (tem, dir_find_data_a.cFileName);
3531 else
3532 filename_from_ansi (dir_find_data_a.cFileName, dir_static.d_name);
3533 if (downcase || dir_is_fat)
3534 {
3535 _mbslwr (tem);
3536 filename_from_ansi (tem, dir_static.d_name);
3537 }
3538 last_dir_find_data = DIR_FIND_DATA_A;
3539 }
3540
3541 dir_static.d_namlen = strlen (dir_static.d_name);
3542 dir_static.d_reclen = sizeof (struct dirent) - MAX_UTF8_PATH + 3 +
3543 dir_static.d_namlen - dir_static.d_namlen % 4;
3544
3545 return &dir_static;
3546 }
3547
3548 static HANDLE
3549 open_unc_volume (const char *path)
3550 {
3551 const char *fn = map_w32_filename (path, NULL);
3552 DWORD result;
3553 HANDLE henum;
3554
3555 if (w32_unicode_filenames)
3556 {
3557 NETRESOURCEW nrw;
3558 wchar_t fnw[MAX_PATH];
3559
3560 nrw.dwScope = RESOURCE_GLOBALNET;
3561 nrw.dwType = RESOURCETYPE_DISK;
3562 nrw.dwDisplayType = RESOURCEDISPLAYTYPE_SERVER;
3563 nrw.dwUsage = RESOURCEUSAGE_CONTAINER;
3564 nrw.lpLocalName = NULL;
3565 filename_to_utf16 (fn, fnw);
3566 nrw.lpRemoteName = fnw;
3567 nrw.lpComment = NULL;
3568 nrw.lpProvider = NULL;
3569
3570 result = WNetOpenEnumW (RESOURCE_GLOBALNET, RESOURCETYPE_DISK,
3571 RESOURCEUSAGE_CONNECTABLE, &nrw, &henum);
3572 }
3573 else
3574 {
3575 NETRESOURCEA nra;
3576 char fna[MAX_PATH];
3577
3578 nra.dwScope = RESOURCE_GLOBALNET;
3579 nra.dwType = RESOURCETYPE_DISK;
3580 nra.dwDisplayType = RESOURCEDISPLAYTYPE_SERVER;
3581 nra.dwUsage = RESOURCEUSAGE_CONTAINER;
3582 nra.lpLocalName = NULL;
3583 filename_to_ansi (fn, fna);
3584 nra.lpRemoteName = fna;
3585 nra.lpComment = NULL;
3586 nra.lpProvider = NULL;
3587
3588 result = WNetOpenEnumA (RESOURCE_GLOBALNET, RESOURCETYPE_DISK,
3589 RESOURCEUSAGE_CONNECTABLE, &nra, &henum);
3590 }
3591 if (result == NO_ERROR)
3592 return henum;
3593 else
3594 {
3595 /* Make sure directory_files_internal reports a sensible error. */
3596 errno = ENOENT;
3597 return INVALID_HANDLE_VALUE;
3598 }
3599 }
3600
3601 static void *
3602 read_unc_volume (HANDLE henum, wchar_t *fname_w, char *fname_a, int size)
3603 {
3604 DWORD count;
3605 int result;
3606 char *buffer;
3607 DWORD bufsize = 512;
3608 void *retval;
3609
3610 count = 1;
3611 if (w32_unicode_filenames)
3612 {
3613 wchar_t *ptrw;
3614
3615 bufsize *= 2;
3616 buffer = alloca (bufsize);
3617 result = WNetEnumResourceW (henum, &count, buffer, &bufsize);
3618 if (result != NO_ERROR)
3619 return NULL;
3620 /* WNetEnumResource returns \\resource\share...skip forward to "share". */
3621 ptrw = ((LPNETRESOURCEW) buffer)->lpRemoteName;
3622 ptrw += 2;
3623 while (*ptrw && *ptrw != L'/' && *ptrw != L'\\') ptrw++;
3624 ptrw++;
3625 wcsncpy (fname_w, ptrw, size);
3626 retval = fname_w;
3627 }
3628 else
3629 {
3630 int dbcs_p = max_filename_mbslen () > 1;
3631 char *ptra;
3632
3633 buffer = alloca (bufsize);
3634 result = WNetEnumResourceA (henum, &count, buffer, &bufsize);
3635 if (result != NO_ERROR)
3636 return NULL;
3637 ptra = ((LPNETRESOURCEA) buffer)->lpRemoteName;
3638 ptra += 2;
3639 if (!dbcs_p)
3640 while (*ptra && !IS_DIRECTORY_SEP (*ptra)) ptra++;
3641 else
3642 {
3643 while (*ptra && !IS_DIRECTORY_SEP (*ptra))
3644 ptra = CharNextExA (file_name_codepage, ptra, 0);
3645 }
3646 ptra++;
3647 strncpy (fname_a, ptra, size);
3648 retval = fname_a;
3649 }
3650
3651 return retval;
3652 }
3653
3654 static void
3655 close_unc_volume (HANDLE henum)
3656 {
3657 if (henum != INVALID_HANDLE_VALUE)
3658 WNetCloseEnum (henum);
3659 }
3660
3661 static DWORD
3662 unc_volume_file_attributes (const char *path)
3663 {
3664 HANDLE henum;
3665 DWORD attrs;
3666
3667 henum = open_unc_volume (path);
3668 if (henum == INVALID_HANDLE_VALUE)
3669 return -1;
3670
3671 attrs = FILE_ATTRIBUTE_READONLY | FILE_ATTRIBUTE_DIRECTORY;
3672
3673 close_unc_volume (henum);
3674
3675 return attrs;
3676 }
3677
3678 /* Ensure a network connection is authenticated. */
3679 static void
3680 logon_network_drive (const char *path)
3681 {
3682 char share[MAX_UTF8_PATH];
3683 int n_slashes;
3684 char drive[4];
3685 UINT drvtype;
3686 char *p;
3687 DWORD val;
3688
3689 if (IS_DIRECTORY_SEP (path[0]) && IS_DIRECTORY_SEP (path[1]))
3690 drvtype = DRIVE_REMOTE;
3691 else if (path[0] == '\0' || path[1] != ':')
3692 drvtype = GetDriveType (NULL);
3693 else
3694 {
3695 drive[0] = path[0];
3696 drive[1] = ':';
3697 drive[2] = '\\';
3698 drive[3] = '\0';
3699 drvtype = GetDriveType (drive);
3700 }
3701
3702 /* Only logon to networked drives. */
3703 if (drvtype != DRIVE_REMOTE)
3704 return;
3705
3706 n_slashes = 2;
3707 strncpy (share, path, MAX_UTF8_PATH);
3708 /* Truncate to just server and share name. */
3709 for (p = share + 2; *p && p < share + MAX_UTF8_PATH; p++)
3710 {
3711 if (IS_DIRECTORY_SEP (*p) && ++n_slashes > 3)
3712 {
3713 *p = '\0';
3714 break;
3715 }
3716 }
3717
3718 if (w32_unicode_filenames)
3719 {
3720 NETRESOURCEW resourcew;
3721 wchar_t share_w[MAX_PATH];
3722
3723 resourcew.dwScope = RESOURCE_GLOBALNET;
3724 resourcew.dwType = RESOURCETYPE_DISK;
3725 resourcew.dwDisplayType = RESOURCEDISPLAYTYPE_SHARE;
3726 resourcew.dwUsage = RESOURCEUSAGE_CONTAINER;
3727 resourcew.lpLocalName = NULL;
3728 filename_to_utf16 (share, share_w);
3729 resourcew.lpRemoteName = share_w;
3730 resourcew.lpProvider = NULL;
3731
3732 val = WNetAddConnection2W (&resourcew, NULL, NULL, CONNECT_INTERACTIVE);
3733 }
3734 else
3735 {
3736 NETRESOURCEA resourcea;
3737 char share_a[MAX_PATH];
3738
3739 resourcea.dwScope = RESOURCE_GLOBALNET;
3740 resourcea.dwType = RESOURCETYPE_DISK;
3741 resourcea.dwDisplayType = RESOURCEDISPLAYTYPE_SHARE;
3742 resourcea.dwUsage = RESOURCEUSAGE_CONTAINER;
3743 resourcea.lpLocalName = NULL;
3744 filename_to_ansi (share, share_a);
3745 resourcea.lpRemoteName = share_a;
3746 resourcea.lpProvider = NULL;
3747
3748 val = WNetAddConnection2A (&resourcea, NULL, NULL, CONNECT_INTERACTIVE);
3749 }
3750
3751 switch (val)
3752 {
3753 case NO_ERROR:
3754 case ERROR_ALREADY_ASSIGNED:
3755 break;
3756 case ERROR_ACCESS_DENIED:
3757 case ERROR_LOGON_FAILURE:
3758 errno = EACCES;
3759 break;
3760 case ERROR_BUSY:
3761 errno = EAGAIN;
3762 break;
3763 case ERROR_BAD_NET_NAME:
3764 case ERROR_NO_NET_OR_BAD_PATH:
3765 case ERROR_NO_NETWORK:
3766 case ERROR_CANCELLED:
3767 default:
3768 errno = ENOENT;
3769 break;
3770 }
3771 }
3772
3773 /* Emulate faccessat(2). */
3774 int
3775 faccessat (int dirfd, const char * path, int mode, int flags)
3776 {
3777 DWORD attributes;
3778
3779 if (dirfd != AT_FDCWD
3780 && !(IS_DIRECTORY_SEP (path[0])
3781 || IS_DEVICE_SEP (path[1])))
3782 {
3783 errno = EBADF;
3784 return -1;
3785 }
3786
3787 /* MSVCRT implementation of 'access' doesn't recognize D_OK, and its
3788 newer versions blow up when passed D_OK. */
3789 path = map_w32_filename (path, NULL);
3790 /* If the last element of PATH is a symlink, we need to resolve it
3791 to get the attributes of its target file. Note: any symlinks in
3792 PATH elements other than the last one are transparently resolved
3793 by GetFileAttributes below. */
3794 if ((volume_info.flags & FILE_SUPPORTS_REPARSE_POINTS) != 0
3795 && (flags & AT_SYMLINK_NOFOLLOW) == 0)
3796 path = chase_symlinks (path);
3797
3798 if (w32_unicode_filenames)
3799 {
3800 wchar_t path_w[MAX_PATH];
3801
3802 filename_to_utf16 (path, path_w);
3803 attributes = GetFileAttributesW (path_w);
3804 }
3805 else
3806 {
3807 char path_a[MAX_PATH];
3808
3809 filename_to_ansi (path, path_a);
3810 attributes = GetFileAttributesA (path_a);
3811 }
3812
3813 if (attributes == -1)
3814 {
3815 DWORD w32err = GetLastError ();
3816
3817 switch (w32err)
3818 {
3819 case ERROR_INVALID_NAME:
3820 case ERROR_BAD_PATHNAME:
3821 if (is_unc_volume (path))
3822 {
3823 attributes = unc_volume_file_attributes (path);
3824 if (attributes == -1)
3825 {
3826 errno = EACCES;
3827 return -1;
3828 }
3829 goto check_attrs;
3830 }
3831 /* FALLTHROUGH */
3832 case ERROR_FILE_NOT_FOUND:
3833 case ERROR_BAD_NETPATH:
3834 errno = ENOENT;
3835 break;
3836 default:
3837 errno = EACCES;
3838 break;
3839 }
3840 return -1;
3841 }
3842
3843 check_attrs:
3844 if ((mode & X_OK) != 0
3845 && !(is_exec (path) || (attributes & FILE_ATTRIBUTE_DIRECTORY) != 0))
3846 {
3847 errno = EACCES;
3848 return -1;
3849 }
3850 if ((mode & W_OK) != 0 && (attributes & FILE_ATTRIBUTE_READONLY) != 0)
3851 {
3852 errno = EACCES;
3853 return -1;
3854 }
3855 if ((mode & D_OK) != 0 && (attributes & FILE_ATTRIBUTE_DIRECTORY) == 0)
3856 {
3857 errno = EACCES;
3858 return -1;
3859 }
3860 return 0;
3861 }
3862
3863 /* A special test for DIRNAME being a directory accessible by the
3864 current user. This is needed because the security permissions in
3865 directory's ACLs are not visible in the Posix-style mode bits
3866 returned by 'stat' and in attributes returned by GetFileAttributes.
3867 So a directory would seem like it's readable by the current user,
3868 but will in fact error out with EACCES when they actually try. */
3869 int
3870 w32_accessible_directory_p (const char *dirname, ptrdiff_t dirlen)
3871 {
3872 char pattern[MAX_UTF8_PATH];
3873 bool last_slash = dirlen > 0 && IS_DIRECTORY_SEP (dirname[dirlen - 1]);
3874 HANDLE dh;
3875
3876 /* Network volumes need a different reading method. */
3877 if (is_unc_volume (dirname))
3878 {
3879 void *read_result = NULL;
3880 wchar_t fnw[MAX_PATH];
3881 char fna[MAX_PATH];
3882
3883 dh = open_unc_volume (dirname);
3884 if (dh != INVALID_HANDLE_VALUE)
3885 {
3886 read_result = read_unc_volume (dh, fnw, fna, MAX_PATH);
3887 close_unc_volume (dh);
3888 }
3889 /* Treat empty volumes as accessible. */
3890 return read_result != NULL || GetLastError () == ERROR_NO_MORE_ITEMS;
3891 }
3892
3893 /* Note: map_w32_filename makes sure DIRNAME is not longer than
3894 MAX_UTF8_PATH. */
3895 strcpy (pattern, map_w32_filename (dirname, NULL));
3896
3897 /* Note: No need to resolve symlinks in FILENAME, because FindFirst
3898 opens the directory that is the target of a symlink. */
3899 if (w32_unicode_filenames)
3900 {
3901 wchar_t pat_w[MAX_PATH + 2];
3902 WIN32_FIND_DATAW dfd_w;
3903
3904 filename_to_utf16 (pattern, pat_w);
3905 if (!last_slash)
3906 wcscat (pat_w, L"\\");
3907 wcscat (pat_w, L"*");
3908 dh = FindFirstFileW (pat_w, &dfd_w);
3909 }
3910 else
3911 {
3912 char pat_a[MAX_PATH + 2];
3913 WIN32_FIND_DATAA dfd_a;
3914
3915 filename_to_ansi (pattern, pat_a);
3916 if (!last_slash)
3917 strcpy (pat_a, "\\");
3918 strcat (pat_a, "*");
3919 /* In case DIRNAME cannot be expressed in characters from the
3920 current ANSI codepage. */
3921 if (_mbspbrk (pat_a, "?"))
3922 dh = INVALID_HANDLE_VALUE;
3923 else
3924 dh = FindFirstFileA (pat_a, &dfd_a);
3925 }
3926
3927 if (dh == INVALID_HANDLE_VALUE)
3928 return 0;
3929 FindClose (dh);
3930 return 1;
3931 }
3932
3933 /* A version of 'access' to be used locally with file names in
3934 locale-specific encoding. Does not resolve symlinks and does not
3935 support file names on FAT12 and FAT16 volumes, but that's OK, since
3936 we only invoke this function for files inside the Emacs source or
3937 installation tree, on directories (so any symlinks should have the
3938 directory bit set), and on short file names such as "C:/.emacs". */
3939 static int
3940 sys_access (const char *fname, int mode)
3941 {
3942 char fname_copy[MAX_PATH], *p;
3943 DWORD attributes;
3944
3945 strcpy (fname_copy, fname);
3946 /* Do the equivalent of unixtodos_filename. */
3947 for (p = fname_copy; *p; p = CharNext (p))
3948 if (*p == '/')
3949 *p = '\\';
3950
3951 if ((attributes = GetFileAttributesA (fname_copy)) == -1)
3952 {
3953 DWORD w32err = GetLastError ();
3954
3955 switch (w32err)
3956 {
3957 case ERROR_INVALID_NAME:
3958 case ERROR_BAD_PATHNAME:
3959 case ERROR_FILE_NOT_FOUND:
3960 case ERROR_BAD_NETPATH:
3961 errno = ENOENT;
3962 break;
3963 default:
3964 errno = EACCES;
3965 break;
3966 }
3967 return -1;
3968 }
3969 if ((mode & X_OK) != 0
3970 && !(is_exec (fname_copy)
3971 || (attributes & FILE_ATTRIBUTE_DIRECTORY) != 0))
3972 {
3973 errno = EACCES;
3974 return -1;
3975 }
3976 if ((mode & W_OK) != 0 && (attributes & FILE_ATTRIBUTE_READONLY) != 0)
3977 {
3978 errno = EACCES;
3979 return -1;
3980 }
3981 if ((mode & D_OK) != 0 && (attributes & FILE_ATTRIBUTE_DIRECTORY) == 0)
3982 {
3983 errno = EACCES;
3984 return -1;
3985 }
3986 return 0;
3987 }
3988
3989 /* Shadow some MSVC runtime functions to map requests for long filenames
3990 to reasonable short names if necessary. This was originally added to
3991 permit running Emacs on NT 3.1 on a FAT partition, which doesn't support
3992 long file names. */
3993
3994 int
3995 sys_chdir (const char * path)
3996 {
3997 path = map_w32_filename (path, NULL);
3998 if (w32_unicode_filenames)
3999 {
4000 wchar_t newdir_w[MAX_PATH];
4001
4002 if (filename_to_utf16 (path, newdir_w) == 0)
4003 return _wchdir (newdir_w);
4004 return -1;
4005 }
4006 else
4007 {
4008 char newdir_a[MAX_PATH];
4009
4010 if (filename_to_ansi (path, newdir_a) == 0)
4011 return _chdir (newdir_a);
4012 return -1;
4013 }
4014 }
4015
4016 int
4017 sys_chmod (const char * path, int mode)
4018 {
4019 path = chase_symlinks (map_w32_filename (path, NULL));
4020 if (w32_unicode_filenames)
4021 {
4022 wchar_t path_w[MAX_PATH];
4023
4024 filename_to_utf16 (path, path_w);
4025 return _wchmod (path_w, mode);
4026 }
4027 else
4028 {
4029 char path_a[MAX_PATH];
4030
4031 filename_to_ansi (path, path_a);
4032 return _chmod (path_a, mode);
4033 }
4034 }
4035
4036 int
4037 sys_creat (const char * path, int mode)
4038 {
4039 path = map_w32_filename (path, NULL);
4040 if (w32_unicode_filenames)
4041 {
4042 wchar_t path_w[MAX_PATH];
4043
4044 filename_to_utf16 (path, path_w);
4045 return _wcreat (path_w, mode);
4046 }
4047 else
4048 {
4049 char path_a[MAX_PATH];
4050
4051 filename_to_ansi (path, path_a);
4052 return _creat (path_a, mode);
4053 }
4054 }
4055
4056 FILE *
4057 sys_fopen (const char * path, const char * mode)
4058 {
4059 int fd;
4060 int oflag;
4061 const char * mode_save = mode;
4062
4063 /* Force all file handles to be non-inheritable. This is necessary to
4064 ensure child processes don't unwittingly inherit handles that might
4065 prevent future file access. */
4066
4067 if (mode[0] == 'r')
4068 oflag = O_RDONLY;
4069 else if (mode[0] == 'w' || mode[0] == 'a')
4070 oflag = O_WRONLY | O_CREAT | O_TRUNC;
4071 else
4072 return NULL;
4073
4074 /* Only do simplistic option parsing. */
4075 while (*++mode)
4076 if (mode[0] == '+')
4077 {
4078 oflag &= ~(O_RDONLY | O_WRONLY);
4079 oflag |= O_RDWR;
4080 }
4081 else if (mode[0] == 'b')
4082 {
4083 oflag &= ~O_TEXT;
4084 oflag |= O_BINARY;
4085 }
4086 else if (mode[0] == 't')
4087 {
4088 oflag &= ~O_BINARY;
4089 oflag |= O_TEXT;
4090 }
4091 else break;
4092
4093 path = map_w32_filename (path, NULL);
4094 if (w32_unicode_filenames)
4095 {
4096 wchar_t path_w[MAX_PATH];
4097
4098 filename_to_utf16 (path, path_w);
4099 fd = _wopen (path_w, oflag | _O_NOINHERIT, 0644);
4100 }
4101 else
4102 {
4103 char path_a[MAX_PATH];
4104
4105 filename_to_ansi (path, path_a);
4106 fd = _open (path_a, oflag | _O_NOINHERIT, 0644);
4107 }
4108 if (fd < 0)
4109 return NULL;
4110
4111 return _fdopen (fd, mode_save);
4112 }
4113
4114 /* This only works on NTFS volumes, but is useful to have. */
4115 int
4116 sys_link (const char * old, const char * new)
4117 {
4118 HANDLE fileh;
4119 int result = -1;
4120 char oldname[MAX_UTF8_PATH], newname[MAX_UTF8_PATH];
4121 wchar_t oldname_w[MAX_PATH];
4122 char oldname_a[MAX_PATH];
4123
4124 if (old == NULL || new == NULL)
4125 {
4126 errno = ENOENT;
4127 return -1;
4128 }
4129
4130 strcpy (oldname, map_w32_filename (old, NULL));
4131 strcpy (newname, map_w32_filename (new, NULL));
4132
4133 if (w32_unicode_filenames)
4134 {
4135 filename_to_utf16 (oldname, oldname_w);
4136 fileh = CreateFileW (oldname_w, 0, 0, NULL, OPEN_EXISTING,
4137 FILE_FLAG_BACKUP_SEMANTICS, NULL);
4138 }
4139 else
4140 {
4141 filename_to_ansi (oldname, oldname_a);
4142 fileh = CreateFileA (oldname_a, 0, 0, NULL, OPEN_EXISTING,
4143 FILE_FLAG_BACKUP_SEMANTICS, NULL);
4144 }
4145 if (fileh != INVALID_HANDLE_VALUE)
4146 {
4147 int wlen;
4148
4149 /* Confusingly, the "alternate" stream name field does not apply
4150 when restoring a hard link, and instead contains the actual
4151 stream data for the link (ie. the name of the link to create).
4152 The WIN32_STREAM_ID structure before the cStreamName field is
4153 the stream header, which is then immediately followed by the
4154 stream data. */
4155
4156 struct {
4157 WIN32_STREAM_ID wid;
4158 WCHAR wbuffer[MAX_PATH]; /* extra space for link name */
4159 } data;
4160
4161 /* We used to pass MB_PRECOMPOSED as the 2nd arg here, but MSDN
4162 indicates that flag is unsupported for CP_UTF8, and OTOH says
4163 it is the default anyway. */
4164 wlen = pMultiByteToWideChar (CP_UTF8, 0, newname, -1,
4165 data.wid.cStreamName, MAX_PATH);
4166 if (wlen > 0)
4167 {
4168 LPVOID context = NULL;
4169 DWORD wbytes = 0;
4170
4171 data.wid.dwStreamId = BACKUP_LINK;
4172 data.wid.dwStreamAttributes = 0;
4173 data.wid.Size.LowPart = wlen * sizeof (WCHAR);
4174 data.wid.Size.HighPart = 0;
4175 data.wid.dwStreamNameSize = 0;
4176
4177 if (BackupWrite (fileh, (LPBYTE)&data,
4178 offsetof (WIN32_STREAM_ID, cStreamName)
4179 + data.wid.Size.LowPart,
4180 &wbytes, FALSE, FALSE, &context)
4181 && BackupWrite (fileh, NULL, 0, &wbytes, TRUE, FALSE, &context))
4182 {
4183 /* succeeded */
4184 result = 0;
4185 }
4186 else
4187 {
4188 DWORD err = GetLastError ();
4189 DWORD attributes;
4190
4191 switch (err)
4192 {
4193 case ERROR_ACCESS_DENIED:
4194 /* This is what happens when OLDNAME is a directory,
4195 since Windows doesn't support hard links to
4196 directories. Posix says to set errno to EPERM in
4197 that case. */
4198 if (w32_unicode_filenames)
4199 attributes = GetFileAttributesW (oldname_w);
4200 else
4201 attributes = GetFileAttributesA (oldname_a);
4202 if (attributes != -1
4203 && (attributes & FILE_ATTRIBUTE_DIRECTORY) != 0)
4204 errno = EPERM;
4205 else if (attributes == -1
4206 && is_unc_volume (oldname)
4207 && unc_volume_file_attributes (oldname) != -1)
4208 errno = EPERM;
4209 else
4210 errno = EACCES;
4211 break;
4212 case ERROR_TOO_MANY_LINKS:
4213 errno = EMLINK;
4214 break;
4215 case ERROR_NOT_SAME_DEVICE:
4216 errno = EXDEV;
4217 break;
4218 default:
4219 errno = EINVAL;
4220 break;
4221 }
4222 }
4223 }
4224
4225 CloseHandle (fileh);
4226 }
4227 else
4228 errno = ENOENT;
4229
4230 return result;
4231 }
4232
4233 int
4234 sys_mkdir (const char * path)
4235 {
4236 path = map_w32_filename (path, NULL);
4237
4238 if (w32_unicode_filenames)
4239 {
4240 wchar_t path_w[MAX_PATH];
4241
4242 filename_to_utf16 (path, path_w);
4243 return _wmkdir (path_w);
4244 }
4245 else
4246 {
4247 char path_a[MAX_PATH];
4248
4249 filename_to_ansi (path, path_a);
4250 return _mkdir (path_a);
4251 }
4252 }
4253
4254 int
4255 sys_open (const char * path, int oflag, int mode)
4256 {
4257 const char* mpath = map_w32_filename (path, NULL);
4258 int res = -1;
4259
4260 if (w32_unicode_filenames)
4261 {
4262 wchar_t mpath_w[MAX_PATH];
4263
4264 filename_to_utf16 (mpath, mpath_w);
4265 /* If possible, try to open file without _O_CREAT, to be able to
4266 write to existing hidden and system files. Force all file
4267 handles to be non-inheritable. */
4268 if ((oflag & (_O_CREAT | _O_EXCL)) != (_O_CREAT | _O_EXCL))
4269 res = _wopen (mpath_w, (oflag & ~_O_CREAT) | _O_NOINHERIT, mode);
4270 if (res < 0)
4271 res = _wopen (mpath_w, oflag | _O_NOINHERIT, mode);
4272 }
4273 else
4274 {
4275 char mpath_a[MAX_PATH];
4276
4277 filename_to_ansi (mpath, mpath_a);
4278 if ((oflag & (_O_CREAT | _O_EXCL)) != (_O_CREAT | _O_EXCL))
4279 res = _open (mpath_a, (oflag & ~_O_CREAT) | _O_NOINHERIT, mode);
4280 if (res < 0)
4281 res = _open (mpath_a, oflag | _O_NOINHERIT, mode);
4282 }
4283
4284 return res;
4285 }
4286
4287 /* Implementation of mkostemp for MS-Windows, to avoid race conditions
4288 when using mktemp.
4289
4290 Standard algorithm for generating a temporary file name seems to be
4291 use pid or tid with a letter on the front (in place of the 6 X's)
4292 and cycle through the letters to find a unique name. We extend
4293 that to allow any reasonable character as the first of the 6 X's,
4294 so that the number of simultaneously used temporary files will be
4295 greater. */
4296
4297 int
4298 mkostemp (char * template, int flags)
4299 {
4300 char * p;
4301 int i, fd = -1;
4302 unsigned uid = GetCurrentThreadId ();
4303 int save_errno = errno;
4304 static char first_char[] = "abcdefghijklmnopqrstuvwyz0123456789!%-_@#";
4305
4306 errno = EINVAL;
4307 if (template == NULL)
4308 return -1;
4309
4310 p = template + strlen (template);
4311 i = 5;
4312 /* replace up to the last 5 X's with uid in decimal */
4313 while (--p >= template && p[0] == 'X' && --i >= 0)
4314 {
4315 p[0] = '0' + uid % 10;
4316 uid /= 10;
4317 }
4318
4319 if (i < 0 && p[0] == 'X')
4320 {
4321 i = 0;
4322 do
4323 {
4324 p[0] = first_char[i];
4325 if ((fd = sys_open (template,
4326 flags | _O_CREAT | _O_EXCL | _O_RDWR,
4327 S_IRUSR | S_IWUSR)) >= 0
4328 || errno != EEXIST)
4329 {
4330 if (fd >= 0)
4331 errno = save_errno;
4332 return fd;
4333 }
4334 }
4335 while (++i < sizeof (first_char));
4336 }
4337
4338 /* Template is badly formed or else we can't generate a unique name. */
4339 return -1;
4340 }
4341
4342 int
4343 fchmod (int fd, mode_t mode)
4344 {
4345 return 0;
4346 }
4347
4348 int
4349 sys_rename_replace (const char *oldname, const char *newname, BOOL force)
4350 {
4351 BOOL result;
4352 char temp[MAX_UTF8_PATH], temp_a[MAX_PATH];;
4353 int newname_dev;
4354 int oldname_dev;
4355 bool have_temp_a = false;
4356
4357 /* MoveFile on Windows 95 doesn't correctly change the short file name
4358 alias in a number of circumstances (it is not easy to predict when
4359 just by looking at oldname and newname, unfortunately). In these
4360 cases, renaming through a temporary name avoids the problem.
4361
4362 A second problem on Windows 95 is that renaming through a temp name when
4363 newname is uppercase fails (the final long name ends up in
4364 lowercase, although the short alias might be uppercase) UNLESS the
4365 long temp name is not 8.3.
4366
4367 So, on Windows 95 we always rename through a temp name, and we make sure
4368 the temp name has a long extension to ensure correct renaming. */
4369
4370 strcpy (temp, map_w32_filename (oldname, NULL));
4371
4372 /* volume_info is set indirectly by map_w32_filename. */
4373 oldname_dev = volume_info.serialnum;
4374
4375 if (os_subtype == OS_9X)
4376 {
4377 char * o;
4378 char * p;
4379 int i = 0;
4380 char oldname_a[MAX_PATH];
4381
4382 oldname = map_w32_filename (oldname, NULL);
4383 filename_to_ansi (oldname, oldname_a);
4384 filename_to_ansi (temp, temp_a);
4385 if ((o = strrchr (oldname_a, '\\')))
4386 o++;
4387 else
4388 o = (char *) oldname_a;
4389
4390 if ((p = strrchr (temp_a, '\\')))
4391 p++;
4392 else
4393 p = temp_a;
4394
4395 do
4396 {
4397 /* Force temp name to require a manufactured 8.3 alias - this
4398 seems to make the second rename work properly. */
4399 sprintf (p, "_.%s.%u", o, i);
4400 i++;
4401 result = rename (oldname_a, temp_a);
4402 }
4403 /* This loop must surely terminate! */
4404 while (result < 0 && errno == EEXIST);
4405 if (result < 0)
4406 return -1;
4407 have_temp_a = true;
4408 }
4409
4410 /* If FORCE, emulate Unix behavior - newname is deleted if it already exists
4411 (at least if it is a file; don't do this for directories).
4412
4413 Since we mustn't do this if we are just changing the case of the
4414 file name (we would end up deleting the file we are trying to
4415 rename!), we let rename detect if the destination file already
4416 exists - that way we avoid the possible pitfalls of trying to
4417 determine ourselves whether two names really refer to the same
4418 file, which is not always possible in the general case. (Consider
4419 all the permutations of shared or subst'd drives, etc.) */
4420
4421 newname = map_w32_filename (newname, NULL);
4422
4423 /* volume_info is set indirectly by map_w32_filename. */
4424 newname_dev = volume_info.serialnum;
4425
4426 if (w32_unicode_filenames)
4427 {
4428 wchar_t temp_w[MAX_PATH], newname_w[MAX_PATH];
4429
4430 filename_to_utf16 (temp, temp_w);
4431 filename_to_utf16 (newname, newname_w);
4432 result = _wrename (temp_w, newname_w);
4433 if (result < 0 && force)
4434 {
4435 DWORD w32err = GetLastError ();
4436
4437 if (errno == EACCES
4438 && newname_dev != oldname_dev)
4439 {
4440 /* The implementation of `rename' on Windows does not return
4441 errno = EXDEV when you are moving a directory to a
4442 different storage device (ex. logical disk). It returns
4443 EACCES instead. So here we handle such situations and
4444 return EXDEV. */
4445 DWORD attributes;
4446
4447 if ((attributes = GetFileAttributesW (temp_w)) != -1
4448 && (attributes & FILE_ATTRIBUTE_DIRECTORY))
4449 errno = EXDEV;
4450 }
4451 else if (errno == EEXIST)
4452 {
4453 if (_wchmod (newname_w, 0666) != 0)
4454 return result;
4455 if (_wunlink (newname_w) != 0)
4456 return result;
4457 result = _wrename (temp_w, newname_w);
4458 }
4459 else if (w32err == ERROR_PRIVILEGE_NOT_HELD
4460 && is_symlink (temp))
4461 {
4462 /* This is Windows prohibiting the user from creating a
4463 symlink in another place, since that requires
4464 privileges. */
4465 errno = EPERM;
4466 }
4467 }
4468 }
4469 else
4470 {
4471 char newname_a[MAX_PATH];
4472
4473 if (!have_temp_a)
4474 filename_to_ansi (temp, temp_a);
4475 filename_to_ansi (newname, newname_a);
4476 result = rename (temp_a, newname_a);
4477 if (result < 0 && force)
4478 {
4479 DWORD w32err = GetLastError ();
4480
4481 if (errno == EACCES
4482 && newname_dev != oldname_dev)
4483 {
4484 DWORD attributes;
4485
4486 if ((attributes = GetFileAttributesA (temp_a)) != -1
4487 && (attributes & FILE_ATTRIBUTE_DIRECTORY))
4488 errno = EXDEV;
4489 }
4490 else if (errno == EEXIST)
4491 {
4492 if (_chmod (newname_a, 0666) != 0)
4493 return result;
4494 if (_unlink (newname_a) != 0)
4495 return result;
4496 result = rename (temp_a, newname_a);
4497 }
4498 else if (w32err == ERROR_PRIVILEGE_NOT_HELD
4499 && is_symlink (temp))
4500 errno = EPERM;
4501 }
4502 }
4503
4504 return result;
4505 }
4506
4507 int
4508 sys_rename (char const *old, char const *new)
4509 {
4510 return sys_rename_replace (old, new, TRUE);
4511 }
4512
4513 int
4514 sys_rmdir (const char * path)
4515 {
4516 path = map_w32_filename (path, NULL);
4517
4518 if (w32_unicode_filenames)
4519 {
4520 wchar_t path_w[MAX_PATH];
4521
4522 filename_to_utf16 (path, path_w);
4523 return _wrmdir (path_w);
4524 }
4525 else
4526 {
4527 char path_a[MAX_PATH];
4528
4529 filename_to_ansi (path, path_a);
4530 return _rmdir (path_a);
4531 }
4532 }
4533
4534 int
4535 sys_unlink (const char * path)
4536 {
4537 int rmstatus, e;
4538
4539 path = map_w32_filename (path, NULL);
4540
4541 if (w32_unicode_filenames)
4542 {
4543 wchar_t path_w[MAX_PATH];
4544
4545 filename_to_utf16 (path, path_w);
4546 /* On Unix, unlink works without write permission. */
4547 _wchmod (path_w, 0666);
4548 rmstatus = _wunlink (path_w);
4549 e = errno;
4550 /* Symlinks to directories can only be deleted by _rmdir;
4551 _unlink returns EACCES. */
4552 if (rmstatus != 0
4553 && errno == EACCES
4554 && (is_symlink (path) & FILE_ATTRIBUTE_DIRECTORY) != 0)
4555 rmstatus = _wrmdir (path_w);
4556 else
4557 errno = e;
4558 }
4559 else
4560 {
4561 char path_a[MAX_PATH];
4562
4563 filename_to_ansi (path, path_a);
4564 _chmod (path_a, 0666);
4565 rmstatus = _unlink (path_a);
4566 e = errno;
4567 if (rmstatus != 0
4568 && errno == EACCES
4569 && (is_symlink (path) & FILE_ATTRIBUTE_DIRECTORY) != 0)
4570 rmstatus = _rmdir (path_a);
4571 else
4572 errno = e;
4573 }
4574
4575 return rmstatus;
4576 }
4577
4578 static FILETIME utc_base_ft;
4579 static ULONGLONG utc_base; /* In 100ns units */
4580 static int init = 0;
4581
4582 #define FILETIME_TO_U64(result, ft) \
4583 do { \
4584 ULARGE_INTEGER uiTemp; \
4585 uiTemp.LowPart = (ft).dwLowDateTime; \
4586 uiTemp.HighPart = (ft).dwHighDateTime; \
4587 result = uiTemp.QuadPart; \
4588 } while (0)
4589
4590 static void
4591 initialize_utc_base (void)
4592 {
4593 /* Determine the delta between 1-Jan-1601 and 1-Jan-1970. */
4594 SYSTEMTIME st;
4595
4596 st.wYear = 1970;
4597 st.wMonth = 1;
4598 st.wDay = 1;
4599 st.wHour = 0;
4600 st.wMinute = 0;
4601 st.wSecond = 0;
4602 st.wMilliseconds = 0;
4603
4604 SystemTimeToFileTime (&st, &utc_base_ft);
4605 FILETIME_TO_U64 (utc_base, utc_base_ft);
4606 }
4607
4608 static time_t
4609 convert_time (FILETIME ft)
4610 {
4611 ULONGLONG tmp;
4612
4613 if (!init)
4614 {
4615 initialize_utc_base ();
4616 init = 1;
4617 }
4618
4619 if (CompareFileTime (&ft, &utc_base_ft) < 0)
4620 return 0;
4621
4622 FILETIME_TO_U64 (tmp, ft);
4623 return (time_t) ((tmp - utc_base) / 10000000L);
4624 }
4625
4626 static void
4627 convert_from_time_t (time_t time, FILETIME * pft)
4628 {
4629 ULARGE_INTEGER tmp;
4630
4631 if (!init)
4632 {
4633 initialize_utc_base ();
4634 init = 1;
4635 }
4636
4637 /* time in 100ns units since 1-Jan-1601 */
4638 tmp.QuadPart = (ULONGLONG) time * 10000000L + utc_base;
4639 pft->dwHighDateTime = tmp.HighPart;
4640 pft->dwLowDateTime = tmp.LowPart;
4641 }
4642
4643 static PSECURITY_DESCRIPTOR
4644 get_file_security_desc_by_handle (HANDLE h)
4645 {
4646 PSECURITY_DESCRIPTOR psd = NULL;
4647 DWORD err;
4648 SECURITY_INFORMATION si = OWNER_SECURITY_INFORMATION
4649 | GROUP_SECURITY_INFORMATION /* | DACL_SECURITY_INFORMATION */ ;
4650
4651 err = get_security_info (h, SE_FILE_OBJECT, si,
4652 NULL, NULL, NULL, NULL, &psd);
4653 if (err != ERROR_SUCCESS)
4654 return NULL;
4655
4656 return psd;
4657 }
4658
4659 static PSECURITY_DESCRIPTOR
4660 get_file_security_desc_by_name (const char *fname)
4661 {
4662 PSECURITY_DESCRIPTOR psd = NULL;
4663 DWORD sd_len, err;
4664 SECURITY_INFORMATION si = OWNER_SECURITY_INFORMATION
4665 | GROUP_SECURITY_INFORMATION /* | DACL_SECURITY_INFORMATION */ ;
4666
4667 if (!get_file_security (fname, si, psd, 0, &sd_len))
4668 {
4669 err = GetLastError ();
4670 if (err != ERROR_INSUFFICIENT_BUFFER)
4671 return NULL;
4672 }
4673
4674 psd = xmalloc (sd_len);
4675 if (!get_file_security (fname, si, psd, sd_len, &sd_len))
4676 {
4677 xfree (psd);
4678 return NULL;
4679 }
4680
4681 return psd;
4682 }
4683
4684 static DWORD
4685 get_rid (PSID sid)
4686 {
4687 unsigned n_subauthorities;
4688
4689 /* Use the last sub-authority value of the RID, the relative
4690 portion of the SID, as user/group ID. */
4691 n_subauthorities = *get_sid_sub_authority_count (sid);
4692 if (n_subauthorities < 1)
4693 return 0; /* the "World" RID */
4694 return *get_sid_sub_authority (sid, n_subauthorities - 1);
4695 }
4696
4697 /* Caching SID and account values for faster lokup. */
4698
4699 struct w32_id {
4700 unsigned rid;
4701 struct w32_id *next;
4702 char name[GNLEN+1];
4703 unsigned char sid[FLEXIBLE_ARRAY_MEMBER];
4704 };
4705
4706 static struct w32_id *w32_idlist;
4707
4708 static int
4709 w32_cached_id (PSID sid, unsigned *id, char *name)
4710 {
4711 struct w32_id *tail, *found;
4712
4713 for (found = NULL, tail = w32_idlist; tail; tail = tail->next)
4714 {
4715 if (equal_sid ((PSID)tail->sid, sid))
4716 {
4717 found = tail;
4718 break;
4719 }
4720 }
4721 if (found)
4722 {
4723 *id = found->rid;
4724 strcpy (name, found->name);
4725 return 1;
4726 }
4727 else
4728 return 0;
4729 }
4730
4731 static void
4732 w32_add_to_cache (PSID sid, unsigned id, char *name)
4733 {
4734 DWORD sid_len;
4735 struct w32_id *new_entry;
4736
4737 /* We don't want to leave behind stale cache from when Emacs was
4738 dumped. */
4739 if (initialized)
4740 {
4741 sid_len = get_length_sid (sid);
4742 new_entry = xmalloc (offsetof (struct w32_id, sid) + sid_len);
4743 if (new_entry)
4744 {
4745 new_entry->rid = id;
4746 strcpy (new_entry->name, name);
4747 copy_sid (sid_len, (PSID)new_entry->sid, sid);
4748 new_entry->next = w32_idlist;
4749 w32_idlist = new_entry;
4750 }
4751 }
4752 }
4753
4754 #define UID 1
4755 #define GID 2
4756
4757 static int
4758 get_name_and_id (PSECURITY_DESCRIPTOR psd, unsigned *id, char *nm, int what)
4759 {
4760 PSID sid = NULL;
4761 BOOL dflt;
4762 SID_NAME_USE ignore;
4763 char name[UNLEN+1];
4764 DWORD name_len = sizeof (name);
4765 char domain[1024];
4766 DWORD domain_len = sizeof (domain);
4767 int use_dflt = 0;
4768 int result;
4769
4770 if (what == UID)
4771 result = get_security_descriptor_owner (psd, &sid, &dflt);
4772 else if (what == GID)
4773 result = get_security_descriptor_group (psd, &sid, &dflt);
4774 else
4775 result = 0;
4776
4777 if (!result || !is_valid_sid (sid))
4778 use_dflt = 1;
4779 else if (!w32_cached_id (sid, id, nm))
4780 {
4781 if (!lookup_account_sid (NULL, sid, name, &name_len,
4782 domain, &domain_len, &ignore)
4783 || name_len > UNLEN+1)
4784 use_dflt = 1;
4785 else
4786 {
4787 *id = get_rid (sid);
4788 strcpy (nm, name);
4789 w32_add_to_cache (sid, *id, name);
4790 }
4791 }
4792 return use_dflt;
4793 }
4794
4795 static void
4796 get_file_owner_and_group (PSECURITY_DESCRIPTOR psd, struct stat *st)
4797 {
4798 int dflt_usr = 0, dflt_grp = 0;
4799
4800 if (!psd)
4801 {
4802 dflt_usr = 1;
4803 dflt_grp = 1;
4804 }
4805 else
4806 {
4807 if (get_name_and_id (psd, &st->st_uid, st->st_uname, UID))
4808 dflt_usr = 1;
4809 if (get_name_and_id (psd, &st->st_gid, st->st_gname, GID))
4810 dflt_grp = 1;
4811 }
4812 /* Consider files to belong to current user/group, if we cannot get
4813 more accurate information. */
4814 if (dflt_usr)
4815 {
4816 st->st_uid = dflt_passwd.pw_uid;
4817 strcpy (st->st_uname, dflt_passwd.pw_name);
4818 }
4819 if (dflt_grp)
4820 {
4821 st->st_gid = dflt_passwd.pw_gid;
4822 strcpy (st->st_gname, dflt_group.gr_name);
4823 }
4824 }
4825
4826 /* Return non-zero if NAME is a potentially slow filesystem. */
4827 int
4828 is_slow_fs (const char *name)
4829 {
4830 char drive_root[4];
4831 UINT devtype;
4832
4833 if (IS_DIRECTORY_SEP (name[0]) && IS_DIRECTORY_SEP (name[1]))
4834 devtype = DRIVE_REMOTE; /* assume UNC name is remote */
4835 else if (!(strlen (name) >= 2 && IS_DEVICE_SEP (name[1])))
4836 devtype = GetDriveType (NULL); /* use root of current drive */
4837 else
4838 {
4839 /* GetDriveType needs the root directory of the drive. */
4840 strncpy (drive_root, name, 2);
4841 drive_root[2] = '\\';
4842 drive_root[3] = '\0';
4843 devtype = GetDriveType (drive_root);
4844 }
4845 return !(devtype == DRIVE_FIXED || devtype == DRIVE_RAMDISK);
4846 }
4847
4848 /* If this is non-zero, the caller wants accurate information about
4849 file's owner and group, which could be expensive to get. dired.c
4850 uses this flag when needed for the job at hand. */
4851 int w32_stat_get_owner_group;
4852
4853 /* MSVC stat function can't cope with UNC names and has other bugs, so
4854 replace it with our own. This also allows us to calculate consistent
4855 inode values and owner/group without hacks in the main Emacs code,
4856 and support file names encoded in UTF-8. */
4857
4858 static int
4859 stat_worker (const char * path, struct stat * buf, int follow_symlinks)
4860 {
4861 char *name, *save_name, *r;
4862 WIN32_FIND_DATAW wfd_w;
4863 WIN32_FIND_DATAA wfd_a;
4864 HANDLE fh;
4865 unsigned __int64 fake_inode = 0;
4866 int permission;
4867 int len;
4868 int rootdir = FALSE;
4869 PSECURITY_DESCRIPTOR psd = NULL;
4870 int is_a_symlink = 0;
4871 DWORD file_flags = FILE_FLAG_BACKUP_SEMANTICS;
4872 DWORD access_rights = 0;
4873 DWORD fattrs = 0, serialnum = 0, fs_high = 0, fs_low = 0, nlinks = 1;
4874 FILETIME ctime, atime, wtime;
4875 wchar_t name_w[MAX_PATH];
4876 char name_a[MAX_PATH];
4877
4878 if (path == NULL || buf == NULL)
4879 {
4880 errno = EFAULT;
4881 return -1;
4882 }
4883
4884 save_name = name = (char *) map_w32_filename (path, &path);
4885 /* Must be valid filename, no wild cards or other invalid
4886 characters. */
4887 if (strpbrk (name, "*?|<>\""))
4888 {
4889 errno = ENOENT;
4890 return -1;
4891 }
4892
4893 len = strlen (name);
4894 /* Allocate 1 extra byte so that we could append a slash to a root
4895 directory, down below. */
4896 name = strcpy (alloca (len + 2), name);
4897
4898 /* Avoid a somewhat costly call to is_symlink if the filesystem
4899 doesn't support symlinks. */
4900 if ((volume_info.flags & FILE_SUPPORTS_REPARSE_POINTS) != 0)
4901 is_a_symlink = is_symlink (name);
4902
4903 /* Plan A: Open the file and get all the necessary information via
4904 the resulting handle. This solves several issues in one blow:
4905
4906 . retrieves attributes for the target of a symlink, if needed
4907 . gets attributes of root directories and symlinks pointing to
4908 root directories, thus avoiding the need for special-casing
4909 these and detecting them by examining the file-name format
4910 . retrieves more accurate attributes (e.g., non-zero size for
4911 some directories, esp. directories that are junction points)
4912 . correctly resolves "c:/..", "/.." and similar file names
4913 . avoids run-time penalties for 99% of use cases
4914
4915 Plan A is always tried first, unless the user asked not to (but
4916 if the file is a symlink and we need to follow links, we try Plan
4917 A even if the user asked not to).
4918
4919 If Plan A fails, we go to Plan B (below), where various
4920 potentially expensive techniques must be used to handle "special"
4921 files such as UNC volumes etc. */
4922 if (!(NILP (Vw32_get_true_file_attributes)
4923 || (EQ (Vw32_get_true_file_attributes, Qlocal) && is_slow_fs (name)))
4924 /* Following symlinks requires getting the info by handle. */
4925 || (is_a_symlink && follow_symlinks))
4926 {
4927 BY_HANDLE_FILE_INFORMATION info;
4928
4929 if (is_a_symlink && !follow_symlinks)
4930 file_flags |= FILE_FLAG_OPEN_REPARSE_POINT;
4931 /* READ_CONTROL access rights are required to get security info
4932 by handle. But if the OS doesn't support security in the
4933 first place, we don't need to try. */
4934 if (is_windows_9x () != TRUE)
4935 access_rights |= READ_CONTROL;
4936
4937 if (w32_unicode_filenames)
4938 {
4939 filename_to_utf16 (name, name_w);
4940 fh = CreateFileW (name_w, access_rights, 0, NULL, OPEN_EXISTING,
4941 file_flags, NULL);
4942 /* If CreateFile fails with READ_CONTROL, try again with
4943 zero as access rights. */
4944 if (fh == INVALID_HANDLE_VALUE && access_rights)
4945 fh = CreateFileW (name_w, 0, 0, NULL, OPEN_EXISTING,
4946 file_flags, NULL);
4947 }
4948 else
4949 {
4950 filename_to_ansi (name, name_a);
4951 fh = CreateFileA (name_a, access_rights, 0, NULL, OPEN_EXISTING,
4952 file_flags, NULL);
4953 if (fh == INVALID_HANDLE_VALUE && access_rights)
4954 fh = CreateFileA (name_a, 0, 0, NULL, OPEN_EXISTING,
4955 file_flags, NULL);
4956 }
4957 if (fh == INVALID_HANDLE_VALUE)
4958 goto no_true_file_attributes;
4959
4960 /* This is more accurate in terms of getting the correct number
4961 of links, but is quite slow (it is noticeable when Emacs is
4962 making a list of file name completions). */
4963 if (GetFileInformationByHandle (fh, &info))
4964 {
4965 nlinks = info.nNumberOfLinks;
4966 /* Might as well use file index to fake inode values, but this
4967 is not guaranteed to be unique unless we keep a handle open
4968 all the time (even then there are situations where it is
4969 not unique). Reputedly, there are at most 48 bits of info
4970 (on NTFS, presumably less on FAT). */
4971 fake_inode = info.nFileIndexHigh;
4972 fake_inode <<= 32;
4973 fake_inode += info.nFileIndexLow;
4974 serialnum = info.dwVolumeSerialNumber;
4975 fs_high = info.nFileSizeHigh;
4976 fs_low = info.nFileSizeLow;
4977 ctime = info.ftCreationTime;
4978 atime = info.ftLastAccessTime;
4979 wtime = info.ftLastWriteTime;
4980 fattrs = info.dwFileAttributes;
4981 }
4982 else
4983 {
4984 /* We don't go to Plan B here, because it's not clear that
4985 it's a good idea. The only known use case where
4986 CreateFile succeeds, but GetFileInformationByHandle fails
4987 (with ERROR_INVALID_FUNCTION) is for character devices
4988 such as NUL, PRN, etc. For these, switching to Plan B is
4989 a net loss, because we lose the character device
4990 attribute returned by GetFileType below (FindFirstFile
4991 doesn't set that bit in the attributes), and the other
4992 fields don't make sense for character devices anyway.
4993 Emacs doesn't really care for non-file entities in the
4994 context of l?stat, so neither do we. */
4995
4996 /* w32err is assigned so one could put a breakpoint here and
4997 examine its value, when GetFileInformationByHandle
4998 fails. */
4999 DWORD w32err = GetLastError ();
5000
5001 switch (w32err)
5002 {
5003 case ERROR_FILE_NOT_FOUND: /* can this ever happen? */
5004 errno = ENOENT;
5005 return -1;
5006 }
5007 }
5008
5009 /* Test for a symlink before testing for a directory, since
5010 symlinks to directories have the directory bit set, but we
5011 don't want them to appear as directories. */
5012 if (is_a_symlink && !follow_symlinks)
5013 buf->st_mode = S_IFLNK;
5014 else if (fattrs & FILE_ATTRIBUTE_DIRECTORY)
5015 buf->st_mode = S_IFDIR;
5016 else
5017 {
5018 DWORD ftype = GetFileType (fh);
5019
5020 switch (ftype)
5021 {
5022 case FILE_TYPE_DISK:
5023 buf->st_mode = S_IFREG;
5024 break;
5025 case FILE_TYPE_PIPE:
5026 buf->st_mode = S_IFIFO;
5027 break;
5028 case FILE_TYPE_CHAR:
5029 case FILE_TYPE_UNKNOWN:
5030 default:
5031 buf->st_mode = S_IFCHR;
5032 }
5033 }
5034 /* We produce the fallback owner and group data, based on the
5035 current user that runs Emacs, in the following cases:
5036
5037 . caller didn't request owner and group info
5038 . this is Windows 9X
5039 . getting security by handle failed, and we need to produce
5040 information for the target of a symlink (this is better
5041 than producing a potentially misleading info about the
5042 symlink itself)
5043
5044 If getting security by handle fails, and we don't need to
5045 resolve symlinks, we try getting security by name. */
5046 if (!w32_stat_get_owner_group || is_windows_9x () == TRUE)
5047 get_file_owner_and_group (NULL, buf);
5048 else
5049 {
5050 psd = get_file_security_desc_by_handle (fh);
5051 if (psd)
5052 {
5053 get_file_owner_and_group (psd, buf);
5054 LocalFree (psd);
5055 }
5056 else if (!(is_a_symlink && follow_symlinks))
5057 {
5058 psd = get_file_security_desc_by_name (name);
5059 get_file_owner_and_group (psd, buf);
5060 xfree (psd);
5061 }
5062 else
5063 get_file_owner_and_group (NULL, buf);
5064 }
5065 CloseHandle (fh);
5066 }
5067 else
5068 {
5069 no_true_file_attributes:
5070 /* Plan B: Either getting a handle on the file failed, or the
5071 caller explicitly asked us to not bother making this
5072 information more accurate.
5073
5074 Implementation note: In Plan B, we never bother to resolve
5075 symlinks, even if we got here because we tried Plan A and
5076 failed. That's because, even if the caller asked for extra
5077 precision by setting Vw32_get_true_file_attributes to t,
5078 resolving symlinks requires acquiring a file handle to the
5079 symlink, which we already know will fail. And if the user
5080 did not ask for extra precision, resolving symlinks will fly
5081 in the face of that request, since the user then wants the
5082 lightweight version of the code. */
5083 rootdir = (path >= save_name + len - 1
5084 && (IS_DIRECTORY_SEP (*path) || *path == 0));
5085
5086 /* If name is "c:/.." or "/.." then stat "c:/" or "/". */
5087 r = IS_DEVICE_SEP (name[1]) ? &name[2] : name;
5088 if (IS_DIRECTORY_SEP (r[0])
5089 && r[1] == '.' && r[2] == '.' && r[3] == '\0')
5090 r[1] = r[2] = '\0';
5091
5092 /* Note: If NAME is a symlink to the root of a UNC volume
5093 (i.e. "\\SERVER"), we will not detect that here, and we will
5094 return data about the symlink as result of FindFirst below.
5095 This is unfortunate, but that marginal use case does not
5096 justify a call to chase_symlinks which would impose a penalty
5097 on all the other use cases. (We get here for symlinks to
5098 roots of UNC volumes because CreateFile above fails for them,
5099 unlike with symlinks to root directories X:\ of drives.) */
5100 if (is_unc_volume (name))
5101 {
5102 fattrs = unc_volume_file_attributes (name);
5103 if (fattrs == -1)
5104 return -1;
5105
5106 ctime = atime = wtime = utc_base_ft;
5107 }
5108 else if (rootdir)
5109 {
5110 /* Make sure root directories end in a slash. */
5111 if (!IS_DIRECTORY_SEP (name[len-1]))
5112 strcpy (name + len, "\\");
5113 if (GetDriveType (name) < 2)
5114 {
5115 errno = ENOENT;
5116 return -1;
5117 }
5118
5119 fattrs = FILE_ATTRIBUTE_DIRECTORY;
5120 ctime = atime = wtime = utc_base_ft;
5121 }
5122 else
5123 {
5124 int have_wfd = -1;
5125
5126 /* Make sure non-root directories do NOT end in a slash,
5127 otherwise FindFirstFile might fail. */
5128 if (IS_DIRECTORY_SEP (name[len-1]))
5129 name[len - 1] = 0;
5130
5131 /* (This is hacky, but helps when doing file completions on
5132 network drives.) Optimize by using information available from
5133 active readdir if possible. */
5134 len = strlen (dir_pathname);
5135 if (IS_DIRECTORY_SEP (dir_pathname[len-1]))
5136 len--;
5137 if (dir_find_handle != INVALID_HANDLE_VALUE
5138 && last_dir_find_data != -1
5139 && !(is_a_symlink && follow_symlinks)
5140 /* The 2 file-name comparisons below support only ASCII
5141 characters, and will lose (compare not equal) when
5142 the file names include non-ASCII characters that are
5143 the same but for the case. However, doing this
5144 properly involves: (a) converting both file names to
5145 UTF-16, (b) lower-casing both names using CharLowerW,
5146 and (c) comparing the results; this would be quite a
5147 bit slower, whereas Plan B is for users who want
5148 lightweight albeit inaccurate version of 'stat'. */
5149 && c_strncasecmp (save_name, dir_pathname, len) == 0
5150 && IS_DIRECTORY_SEP (name[len])
5151 && xstrcasecmp (name + len + 1, dir_static.d_name) == 0)
5152 {
5153 have_wfd = last_dir_find_data;
5154 /* This was the last entry returned by readdir. */
5155 if (last_dir_find_data == DIR_FIND_DATA_W)
5156 wfd_w = dir_find_data_w;
5157 else
5158 wfd_a = dir_find_data_a;
5159 }
5160 else
5161 {
5162 logon_network_drive (name);
5163
5164 if (w32_unicode_filenames)
5165 {
5166 filename_to_utf16 (name, name_w);
5167 fh = FindFirstFileW (name_w, &wfd_w);
5168 have_wfd = DIR_FIND_DATA_W;
5169 }
5170 else
5171 {
5172 filename_to_ansi (name, name_a);
5173 /* If NAME includes characters not representable by
5174 the current ANSI codepage, filename_to_ansi
5175 usually replaces them with a '?'. We don't want
5176 to let FindFirstFileA interpret those as wildcards,
5177 and "succeed", returning us data from some random
5178 file in the same directory. */
5179 if (_mbspbrk (name_a, "?"))
5180 fh = INVALID_HANDLE_VALUE;
5181 else
5182 fh = FindFirstFileA (name_a, &wfd_a);
5183 have_wfd = DIR_FIND_DATA_A;
5184 }
5185 if (fh == INVALID_HANDLE_VALUE)
5186 {
5187 errno = ENOENT;
5188 return -1;
5189 }
5190 FindClose (fh);
5191 }
5192 /* Note: if NAME is a symlink, the information we get from
5193 FindFirstFile is for the symlink, not its target. */
5194 if (have_wfd == DIR_FIND_DATA_W)
5195 {
5196 fattrs = wfd_w.dwFileAttributes;
5197 ctime = wfd_w.ftCreationTime;
5198 atime = wfd_w.ftLastAccessTime;
5199 wtime = wfd_w.ftLastWriteTime;
5200 fs_high = wfd_w.nFileSizeHigh;
5201 fs_low = wfd_w.nFileSizeLow;
5202 }
5203 else
5204 {
5205 fattrs = wfd_a.dwFileAttributes;
5206 ctime = wfd_a.ftCreationTime;
5207 atime = wfd_a.ftLastAccessTime;
5208 wtime = wfd_a.ftLastWriteTime;
5209 fs_high = wfd_a.nFileSizeHigh;
5210 fs_low = wfd_a.nFileSizeLow;
5211 }
5212 fake_inode = 0;
5213 nlinks = 1;
5214 serialnum = volume_info.serialnum;
5215 }
5216 if (is_a_symlink && !follow_symlinks)
5217 buf->st_mode = S_IFLNK;
5218 else if (fattrs & FILE_ATTRIBUTE_DIRECTORY)
5219 buf->st_mode = S_IFDIR;
5220 else
5221 buf->st_mode = S_IFREG;
5222
5223 get_file_owner_and_group (NULL, buf);
5224 }
5225
5226 buf->st_ino = fake_inode;
5227
5228 buf->st_dev = serialnum;
5229 buf->st_rdev = serialnum;
5230
5231 buf->st_size = fs_high;
5232 buf->st_size <<= 32;
5233 buf->st_size += fs_low;
5234 buf->st_nlink = nlinks;
5235
5236 /* Convert timestamps to Unix format. */
5237 buf->st_mtime = convert_time (wtime);
5238 buf->st_atime = convert_time (atime);
5239 if (buf->st_atime == 0) buf->st_atime = buf->st_mtime;
5240 buf->st_ctime = convert_time (ctime);
5241 if (buf->st_ctime == 0) buf->st_ctime = buf->st_mtime;
5242
5243 /* determine rwx permissions */
5244 if (is_a_symlink && !follow_symlinks)
5245 permission = S_IREAD | S_IWRITE | S_IEXEC; /* Posix expectations */
5246 else
5247 {
5248 if (fattrs & FILE_ATTRIBUTE_READONLY)
5249 permission = S_IREAD;
5250 else
5251 permission = S_IREAD | S_IWRITE;
5252
5253 if (fattrs & FILE_ATTRIBUTE_DIRECTORY)
5254 permission |= S_IEXEC;
5255 else if (is_exec (name))
5256 permission |= S_IEXEC;
5257 }
5258
5259 buf->st_mode |= permission | (permission >> 3) | (permission >> 6);
5260
5261 return 0;
5262 }
5263
5264 int
5265 stat (const char * path, struct stat * buf)
5266 {
5267 return stat_worker (path, buf, 1);
5268 }
5269
5270 int
5271 lstat (const char * path, struct stat * buf)
5272 {
5273 return stat_worker (path, buf, 0);
5274 }
5275
5276 int
5277 fstatat (int fd, char const *name, struct stat *st, int flags)
5278 {
5279 /* Rely on a hack: an open directory is modeled as file descriptor 0.
5280 This is good enough for the current usage in Emacs, but is fragile.
5281
5282 FIXME: Add proper support for fdopendir, fstatat, readlinkat.
5283 Gnulib does this and can serve as a model. */
5284 char fullname[MAX_UTF8_PATH];
5285
5286 if (fd != AT_FDCWD)
5287 {
5288 char lastc = dir_pathname[strlen (dir_pathname) - 1];
5289
5290 if (_snprintf (fullname, sizeof fullname, "%s%s%s",
5291 dir_pathname, IS_DIRECTORY_SEP (lastc) ? "" : "/", name)
5292 < 0)
5293 {
5294 errno = ENAMETOOLONG;
5295 return -1;
5296 }
5297 name = fullname;
5298 }
5299
5300 return stat_worker (name, st, ! (flags & AT_SYMLINK_NOFOLLOW));
5301 }
5302
5303 /* Provide fstat and utime as well as stat for consistent handling of
5304 file timestamps. */
5305 int
5306 fstat (int desc, struct stat * buf)
5307 {
5308 HANDLE fh = (HANDLE) _get_osfhandle (desc);
5309 BY_HANDLE_FILE_INFORMATION info;
5310 unsigned __int64 fake_inode;
5311 int permission;
5312
5313 switch (GetFileType (fh) & ~FILE_TYPE_REMOTE)
5314 {
5315 case FILE_TYPE_DISK:
5316 buf->st_mode = S_IFREG;
5317 if (!GetFileInformationByHandle (fh, &info))
5318 {
5319 errno = EACCES;
5320 return -1;
5321 }
5322 break;
5323 case FILE_TYPE_PIPE:
5324 buf->st_mode = S_IFIFO;
5325 goto non_disk;
5326 case FILE_TYPE_CHAR:
5327 case FILE_TYPE_UNKNOWN:
5328 default:
5329 buf->st_mode = S_IFCHR;
5330 non_disk:
5331 memset (&info, 0, sizeof (info));
5332 info.dwFileAttributes = 0;
5333 info.ftCreationTime = utc_base_ft;
5334 info.ftLastAccessTime = utc_base_ft;
5335 info.ftLastWriteTime = utc_base_ft;
5336 }
5337
5338 if (info.dwFileAttributes & FILE_ATTRIBUTE_DIRECTORY)
5339 buf->st_mode = S_IFDIR;
5340
5341 buf->st_nlink = info.nNumberOfLinks;
5342 /* Might as well use file index to fake inode values, but this
5343 is not guaranteed to be unique unless we keep a handle open
5344 all the time (even then there are situations where it is
5345 not unique). Reputedly, there are at most 48 bits of info
5346 (on NTFS, presumably less on FAT). */
5347 fake_inode = info.nFileIndexHigh;
5348 fake_inode <<= 32;
5349 fake_inode += info.nFileIndexLow;
5350
5351 /* MSVC defines _ino_t to be short; other libc's might not. */
5352 if (sizeof (buf->st_ino) == 2)
5353 buf->st_ino = fake_inode ^ (fake_inode >> 16);
5354 else
5355 buf->st_ino = fake_inode;
5356
5357 /* If the caller so requested, get the true file owner and group.
5358 Otherwise, consider the file to belong to the current user. */
5359 if (!w32_stat_get_owner_group || is_windows_9x () == TRUE)
5360 get_file_owner_and_group (NULL, buf);
5361 else
5362 {
5363 PSECURITY_DESCRIPTOR psd = NULL;
5364
5365 psd = get_file_security_desc_by_handle (fh);
5366 if (psd)
5367 {
5368 get_file_owner_and_group (psd, buf);
5369 LocalFree (psd);
5370 }
5371 else
5372 get_file_owner_and_group (NULL, buf);
5373 }
5374
5375 buf->st_dev = info.dwVolumeSerialNumber;
5376 buf->st_rdev = info.dwVolumeSerialNumber;
5377
5378 buf->st_size = info.nFileSizeHigh;
5379 buf->st_size <<= 32;
5380 buf->st_size += info.nFileSizeLow;
5381
5382 /* Convert timestamps to Unix format. */
5383 buf->st_mtime = convert_time (info.ftLastWriteTime);
5384 buf->st_atime = convert_time (info.ftLastAccessTime);
5385 if (buf->st_atime == 0) buf->st_atime = buf->st_mtime;
5386 buf->st_ctime = convert_time (info.ftCreationTime);
5387 if (buf->st_ctime == 0) buf->st_ctime = buf->st_mtime;
5388
5389 /* determine rwx permissions */
5390 if (info.dwFileAttributes & FILE_ATTRIBUTE_READONLY)
5391 permission = S_IREAD;
5392 else
5393 permission = S_IREAD | S_IWRITE;
5394
5395 if (info.dwFileAttributes & FILE_ATTRIBUTE_DIRECTORY)
5396 permission |= S_IEXEC;
5397 else
5398 {
5399 #if 0 /* no way of knowing the filename */
5400 char * p = strrchr (name, '.');
5401 if (p != NULL &&
5402 (xstrcasecmp (p, ".exe") == 0 ||
5403 xstrcasecmp (p, ".com") == 0 ||
5404 xstrcasecmp (p, ".bat") == 0 ||
5405 xstrcasecmp (p, ".cmd") == 0))
5406 permission |= S_IEXEC;
5407 #endif
5408 }
5409
5410 buf->st_mode |= permission | (permission >> 3) | (permission >> 6);
5411
5412 return 0;
5413 }
5414
5415 /* A version of 'utime' which handles directories as well as
5416 files. */
5417
5418 int
5419 utime (const char *name, struct utimbuf *times)
5420 {
5421 struct utimbuf deftime;
5422 HANDLE fh;
5423 FILETIME mtime;
5424 FILETIME atime;
5425
5426 if (times == NULL)
5427 {
5428 deftime.modtime = deftime.actime = time (NULL);
5429 times = &deftime;
5430 }
5431
5432 if (w32_unicode_filenames)
5433 {
5434 wchar_t name_utf16[MAX_PATH];
5435
5436 if (filename_to_utf16 (name, name_utf16) != 0)
5437 return -1; /* errno set by filename_to_utf16 */
5438
5439 /* Need write access to set times. */
5440 fh = CreateFileW (name_utf16, FILE_WRITE_ATTRIBUTES,
5441 /* If NAME specifies a directory, FILE_SHARE_DELETE
5442 allows other processes to delete files inside it,
5443 while we have the directory open. */
5444 FILE_SHARE_READ | FILE_SHARE_WRITE | FILE_SHARE_DELETE,
5445 0, OPEN_EXISTING, FILE_FLAG_BACKUP_SEMANTICS, NULL);
5446 }
5447 else
5448 {
5449 char name_ansi[MAX_PATH];
5450
5451 if (filename_to_ansi (name, name_ansi) != 0)
5452 return -1; /* errno set by filename_to_ansi */
5453
5454 fh = CreateFileA (name_ansi, FILE_WRITE_ATTRIBUTES,
5455 FILE_SHARE_READ | FILE_SHARE_WRITE | FILE_SHARE_DELETE,
5456 0, OPEN_EXISTING, FILE_FLAG_BACKUP_SEMANTICS, NULL);
5457 }
5458 if (fh != INVALID_HANDLE_VALUE)
5459 {
5460 convert_from_time_t (times->actime, &atime);
5461 convert_from_time_t (times->modtime, &mtime);
5462 if (!SetFileTime (fh, NULL, &atime, &mtime))
5463 {
5464 CloseHandle (fh);
5465 errno = EACCES;
5466 return -1;
5467 }
5468 CloseHandle (fh);
5469 }
5470 else
5471 {
5472 DWORD err = GetLastError ();
5473
5474 switch (err)
5475 {
5476 case ERROR_FILE_NOT_FOUND:
5477 case ERROR_PATH_NOT_FOUND:
5478 case ERROR_INVALID_DRIVE:
5479 case ERROR_BAD_NETPATH:
5480 case ERROR_DEV_NOT_EXIST:
5481 /* ERROR_INVALID_NAME is the error CreateFile sets when the
5482 file name includes ?s, i.e. translation to ANSI failed. */
5483 case ERROR_INVALID_NAME:
5484 errno = ENOENT;
5485 break;
5486 case ERROR_TOO_MANY_OPEN_FILES:
5487 errno = ENFILE;
5488 break;
5489 case ERROR_ACCESS_DENIED:
5490 case ERROR_SHARING_VIOLATION:
5491 errno = EACCES;
5492 break;
5493 default:
5494 errno = EINVAL;
5495 break;
5496 }
5497 return -1;
5498 }
5499 return 0;
5500 }
5501
5502 int
5503 sys_umask (int mode)
5504 {
5505 static int current_mask;
5506 int retval, arg = 0;
5507
5508 /* The only bit we really support is the write bit. Files are
5509 always readable on MS-Windows, and the execute bit does not exist
5510 at all. */
5511 /* FIXME: if the GROUP and OTHER bits are reset, we should use ACLs
5512 to prevent access by other users on NTFS. */
5513 if ((mode & S_IWRITE) != 0)
5514 arg |= S_IWRITE;
5515
5516 retval = _umask (arg);
5517 /* Merge into the return value the bits they've set the last time,
5518 which msvcrt.dll ignores and never returns. Emacs insists on its
5519 notion of mask being identical to what we return. */
5520 retval |= (current_mask & ~S_IWRITE);
5521 current_mask = mode;
5522
5523 return retval;
5524 }
5525
5526 \f
5527 /* Symlink-related functions. */
5528 #ifndef SYMBOLIC_LINK_FLAG_DIRECTORY
5529 #define SYMBOLIC_LINK_FLAG_DIRECTORY 0x1
5530 #endif
5531
5532 int
5533 symlink (char const *filename, char const *linkname)
5534 {
5535 char linkfn[MAX_UTF8_PATH], *tgtfn;
5536 DWORD flags = 0;
5537 int dir_access, filename_ends_in_slash;
5538
5539 /* Diagnostics follows Posix as much as possible. */
5540 if (filename == NULL || linkname == NULL)
5541 {
5542 errno = EFAULT;
5543 return -1;
5544 }
5545 if (!*filename)
5546 {
5547 errno = ENOENT;
5548 return -1;
5549 }
5550 if (strlen (filename) > MAX_UTF8_PATH || strlen (linkname) > MAX_UTF8_PATH)
5551 {
5552 errno = ENAMETOOLONG;
5553 return -1;
5554 }
5555
5556 strcpy (linkfn, map_w32_filename (linkname, NULL));
5557 if ((volume_info.flags & FILE_SUPPORTS_REPARSE_POINTS) == 0)
5558 {
5559 errno = EPERM;
5560 return -1;
5561 }
5562
5563 /* Note: since empty FILENAME was already rejected, we can safely
5564 refer to FILENAME[1]. */
5565 if (!(IS_DIRECTORY_SEP (filename[0]) || IS_DEVICE_SEP (filename[1])))
5566 {
5567 /* Non-absolute FILENAME is understood as being relative to
5568 LINKNAME's directory. We need to prepend that directory to
5569 FILENAME to get correct results from faccessat below, since
5570 otherwise it will interpret FILENAME relative to the
5571 directory where the Emacs process runs. Note that
5572 make-symbolic-link always makes sure LINKNAME is a fully
5573 expanded file name. */
5574 char tem[MAX_UTF8_PATH];
5575 char *p = linkfn + strlen (linkfn);
5576
5577 while (p > linkfn && !IS_ANY_SEP (p[-1]))
5578 p--;
5579 if (p > linkfn)
5580 strncpy (tem, linkfn, p - linkfn);
5581 strcpy (tem + (p - linkfn), filename);
5582 dir_access = faccessat (AT_FDCWD, tem, D_OK, AT_EACCESS);
5583 }
5584 else
5585 dir_access = faccessat (AT_FDCWD, filename, D_OK, AT_EACCESS);
5586
5587 /* Since Windows distinguishes between symlinks to directories and
5588 to files, we provide a kludgy feature: if FILENAME doesn't
5589 exist, but ends in a slash, we create a symlink to directory. If
5590 FILENAME exists and is a directory, we always create a symlink to
5591 directory. */
5592 filename_ends_in_slash = IS_DIRECTORY_SEP (filename[strlen (filename) - 1]);
5593 if (dir_access == 0 || filename_ends_in_slash)
5594 flags = SYMBOLIC_LINK_FLAG_DIRECTORY;
5595
5596 tgtfn = (char *)map_w32_filename (filename, NULL);
5597 if (filename_ends_in_slash)
5598 tgtfn[strlen (tgtfn) - 1] = '\0';
5599
5600 errno = 0;
5601 if (!create_symbolic_link (linkfn, tgtfn, flags))
5602 {
5603 /* ENOSYS is set by create_symbolic_link, when it detects that
5604 the OS doesn't support the CreateSymbolicLink API. */
5605 if (errno != ENOSYS)
5606 {
5607 DWORD w32err = GetLastError ();
5608
5609 switch (w32err)
5610 {
5611 /* ERROR_SUCCESS is sometimes returned when LINKFN and
5612 TGTFN point to the same file name, go figure. */
5613 case ERROR_SUCCESS:
5614 case ERROR_FILE_EXISTS:
5615 errno = EEXIST;
5616 break;
5617 case ERROR_ACCESS_DENIED:
5618 errno = EACCES;
5619 break;
5620 case ERROR_FILE_NOT_FOUND:
5621 case ERROR_PATH_NOT_FOUND:
5622 case ERROR_BAD_NETPATH:
5623 case ERROR_INVALID_REPARSE_DATA:
5624 errno = ENOENT;
5625 break;
5626 case ERROR_DIRECTORY:
5627 errno = EISDIR;
5628 break;
5629 case ERROR_PRIVILEGE_NOT_HELD:
5630 case ERROR_NOT_ALL_ASSIGNED:
5631 errno = EPERM;
5632 break;
5633 case ERROR_DISK_FULL:
5634 errno = ENOSPC;
5635 break;
5636 default:
5637 errno = EINVAL;
5638 break;
5639 }
5640 }
5641 return -1;
5642 }
5643 return 0;
5644 }
5645
5646 /* A quick inexpensive test of whether FILENAME identifies a file that
5647 is a symlink. Returns non-zero if it is, zero otherwise. FILENAME
5648 must already be in the normalized form returned by
5649 map_w32_filename. If the symlink is to a directory, the
5650 FILE_ATTRIBUTE_DIRECTORY bit will be set in the return value.
5651
5652 Note: for repeated operations on many files, it is best to test
5653 whether the underlying volume actually supports symlinks, by
5654 testing the FILE_SUPPORTS_REPARSE_POINTS bit in volume's flags, and
5655 avoid the call to this function if it doesn't. That's because the
5656 call to GetFileAttributes takes a non-negligible time, especially
5657 on non-local or removable filesystems. See stat_worker for an
5658 example of how to do that. */
5659 static int
5660 is_symlink (const char *filename)
5661 {
5662 DWORD attrs;
5663 wchar_t filename_w[MAX_PATH];
5664 char filename_a[MAX_PATH];
5665 WIN32_FIND_DATAW wfdw;
5666 WIN32_FIND_DATAA wfda;
5667 HANDLE fh;
5668 int attrs_mean_symlink;
5669
5670 if (w32_unicode_filenames)
5671 {
5672 filename_to_utf16 (filename, filename_w);
5673 attrs = GetFileAttributesW (filename_w);
5674 }
5675 else
5676 {
5677 filename_to_ansi (filename, filename_a);
5678 attrs = GetFileAttributesA (filename_a);
5679 }
5680 if (attrs == -1)
5681 {
5682 DWORD w32err = GetLastError ();
5683
5684 switch (w32err)
5685 {
5686 case ERROR_BAD_NETPATH: /* network share, can't be a symlink */
5687 break;
5688 case ERROR_ACCESS_DENIED:
5689 errno = EACCES;
5690 break;
5691 case ERROR_FILE_NOT_FOUND:
5692 case ERROR_PATH_NOT_FOUND:
5693 default:
5694 errno = ENOENT;
5695 break;
5696 }
5697 return 0;
5698 }
5699 if ((attrs & FILE_ATTRIBUTE_REPARSE_POINT) == 0)
5700 return 0;
5701 logon_network_drive (filename);
5702 if (w32_unicode_filenames)
5703 {
5704 fh = FindFirstFileW (filename_w, &wfdw);
5705 attrs_mean_symlink =
5706 (wfdw.dwFileAttributes & FILE_ATTRIBUTE_REPARSE_POINT) != 0
5707 && (wfdw.dwReserved0 & IO_REPARSE_TAG_SYMLINK) == IO_REPARSE_TAG_SYMLINK;
5708 if (attrs_mean_symlink)
5709 attrs_mean_symlink |= (wfdw.dwFileAttributes & FILE_ATTRIBUTE_DIRECTORY);
5710 }
5711 else if (_mbspbrk (filename_a, "?"))
5712 {
5713 /* filename_to_ansi failed to convert the file name. */
5714 errno = ENOENT;
5715 return 0;
5716 }
5717 else
5718 {
5719 fh = FindFirstFileA (filename_a, &wfda);
5720 attrs_mean_symlink =
5721 (wfda.dwFileAttributes & FILE_ATTRIBUTE_REPARSE_POINT) != 0
5722 && (wfda.dwReserved0 & IO_REPARSE_TAG_SYMLINK) == IO_REPARSE_TAG_SYMLINK;
5723 if (attrs_mean_symlink)
5724 attrs_mean_symlink |= (wfda.dwFileAttributes & FILE_ATTRIBUTE_DIRECTORY);
5725 }
5726 if (fh == INVALID_HANDLE_VALUE)
5727 return 0;
5728 FindClose (fh);
5729 return attrs_mean_symlink;
5730 }
5731
5732 /* If NAME identifies a symbolic link, copy into BUF the file name of
5733 the symlink's target. Copy at most BUF_SIZE bytes, and do NOT
5734 null-terminate the target name, even if it fits. Return the number
5735 of bytes copied, or -1 if NAME is not a symlink or any error was
5736 encountered while resolving it. The file name copied into BUF is
5737 encoded in the current ANSI codepage. */
5738 ssize_t
5739 readlink (const char *name, char *buf, size_t buf_size)
5740 {
5741 const char *path;
5742 TOKEN_PRIVILEGES privs;
5743 int restore_privs = 0;
5744 HANDLE sh;
5745 ssize_t retval;
5746 char resolved[MAX_UTF8_PATH];
5747
5748 if (name == NULL)
5749 {
5750 errno = EFAULT;
5751 return -1;
5752 }
5753 if (!*name)
5754 {
5755 errno = ENOENT;
5756 return -1;
5757 }
5758
5759 path = map_w32_filename (name, NULL);
5760
5761 if (strlen (path) > MAX_UTF8_PATH)
5762 {
5763 errno = ENAMETOOLONG;
5764 return -1;
5765 }
5766
5767 errno = 0;
5768 if (is_windows_9x () == TRUE
5769 || (volume_info.flags & FILE_SUPPORTS_REPARSE_POINTS) == 0
5770 || !is_symlink (path))
5771 {
5772 if (!errno)
5773 errno = EINVAL; /* not a symlink */
5774 return -1;
5775 }
5776
5777 /* Done with simple tests, now we're in for some _real_ work. */
5778 if (enable_privilege (SE_BACKUP_NAME, TRUE, &privs))
5779 restore_privs = 1;
5780 /* Implementation note: From here and onward, don't return early,
5781 since that will fail to restore the original set of privileges of
5782 the calling thread. */
5783
5784 retval = -1; /* not too optimistic, are we? */
5785
5786 /* Note: In the next call to CreateFile, we use zero as the 2nd
5787 argument because, when the symlink is a hidden/system file,
5788 e.g. 'C:\Users\All Users', GENERIC_READ fails with
5789 ERROR_ACCESS_DENIED. Zero seems to work just fine, both for file
5790 and directory symlinks. */
5791 if (w32_unicode_filenames)
5792 {
5793 wchar_t path_w[MAX_PATH];
5794
5795 filename_to_utf16 (path, path_w);
5796 sh = CreateFileW (path_w, 0, 0, NULL, OPEN_EXISTING,
5797 FILE_FLAG_OPEN_REPARSE_POINT
5798 | FILE_FLAG_BACKUP_SEMANTICS,
5799 NULL);
5800 }
5801 else
5802 {
5803 char path_a[MAX_PATH];
5804
5805 filename_to_ansi (path, path_a);
5806 sh = CreateFileA (path_a, 0, 0, NULL, OPEN_EXISTING,
5807 FILE_FLAG_OPEN_REPARSE_POINT
5808 | FILE_FLAG_BACKUP_SEMANTICS,
5809 NULL);
5810 }
5811 if (sh != INVALID_HANDLE_VALUE)
5812 {
5813 BYTE reparse_buf[MAXIMUM_REPARSE_DATA_BUFFER_SIZE];
5814 REPARSE_DATA_BUFFER *reparse_data = (REPARSE_DATA_BUFFER *)&reparse_buf[0];
5815 DWORD retbytes;
5816
5817 if (!DeviceIoControl (sh, FSCTL_GET_REPARSE_POINT, NULL, 0,
5818 reparse_buf, MAXIMUM_REPARSE_DATA_BUFFER_SIZE,
5819 &retbytes, NULL))
5820 errno = EIO;
5821 else if (reparse_data->ReparseTag != IO_REPARSE_TAG_SYMLINK)
5822 errno = EINVAL;
5823 else
5824 {
5825 /* Copy the link target name, in wide characters, from
5826 reparse_data, then convert it to multibyte encoding in
5827 the current locale's codepage. */
5828 WCHAR *lwname;
5829 size_t lname_size;
5830 USHORT lwname_len =
5831 reparse_data->SymbolicLinkReparseBuffer.PrintNameLength;
5832 WCHAR *lwname_src =
5833 reparse_data->SymbolicLinkReparseBuffer.PathBuffer
5834 + reparse_data->SymbolicLinkReparseBuffer.PrintNameOffset/sizeof(WCHAR);
5835 size_t size_to_copy = buf_size;
5836
5837 /* According to MSDN, PrintNameLength does not include the
5838 terminating null character. */
5839 lwname = alloca ((lwname_len + 1) * sizeof(WCHAR));
5840 memcpy (lwname, lwname_src, lwname_len);
5841 lwname[lwname_len/sizeof(WCHAR)] = 0; /* null-terminate */
5842 filename_from_utf16 (lwname, resolved);
5843 dostounix_filename (resolved);
5844 lname_size = strlen (resolved) + 1;
5845 if (lname_size <= buf_size)
5846 size_to_copy = lname_size;
5847 strncpy (buf, resolved, size_to_copy);
5848 /* Success! */
5849 retval = size_to_copy;
5850 }
5851 CloseHandle (sh);
5852 }
5853 else
5854 {
5855 /* CreateFile failed. */
5856 DWORD w32err2 = GetLastError ();
5857
5858 switch (w32err2)
5859 {
5860 case ERROR_FILE_NOT_FOUND:
5861 case ERROR_PATH_NOT_FOUND:
5862 errno = ENOENT;
5863 break;
5864 case ERROR_ACCESS_DENIED:
5865 case ERROR_TOO_MANY_OPEN_FILES:
5866 errno = EACCES;
5867 break;
5868 default:
5869 errno = EPERM;
5870 break;
5871 }
5872 }
5873 if (restore_privs)
5874 {
5875 restore_privilege (&privs);
5876 revert_to_self ();
5877 }
5878
5879 return retval;
5880 }
5881
5882 ssize_t
5883 readlinkat (int fd, char const *name, char *buffer,
5884 size_t buffer_size)
5885 {
5886 /* Rely on a hack: an open directory is modeled as file descriptor 0,
5887 as in fstatat. FIXME: Add proper support for readlinkat. */
5888 char fullname[MAX_UTF8_PATH];
5889
5890 if (fd != AT_FDCWD)
5891 {
5892 if (_snprintf (fullname, sizeof fullname, "%s/%s", dir_pathname, name)
5893 < 0)
5894 {
5895 errno = ENAMETOOLONG;
5896 return -1;
5897 }
5898 name = fullname;
5899 }
5900
5901 return readlink (name, buffer, buffer_size);
5902 }
5903
5904 /* If FILE is a symlink, return its target (stored in a static
5905 buffer); otherwise return FILE.
5906
5907 This function repeatedly resolves symlinks in the last component of
5908 a chain of symlink file names, as in foo -> bar -> baz -> ...,
5909 until it arrives at a file whose last component is not a symlink,
5910 or some error occurs. It returns the target of the last
5911 successfully resolved symlink in the chain. If it succeeds to
5912 resolve even a single symlink, the value returned is an absolute
5913 file name with backslashes (result of GetFullPathName). By
5914 contrast, if the original FILE is returned, it is unaltered.
5915
5916 Note: This function can set errno even if it succeeds.
5917
5918 Implementation note: we only resolve the last portion ("basename")
5919 of the argument FILE and of each following file in the chain,
5920 disregarding any possible symlinks in its leading directories.
5921 This is because Windows system calls and library functions
5922 transparently resolve symlinks in leading directories and return
5923 correct information, as long as the basename is not a symlink. */
5924 static char *
5925 chase_symlinks (const char *file)
5926 {
5927 static char target[MAX_UTF8_PATH];
5928 char link[MAX_UTF8_PATH];
5929 wchar_t target_w[MAX_PATH], link_w[MAX_PATH];
5930 char target_a[MAX_PATH], link_a[MAX_PATH];
5931 ssize_t res, link_len;
5932 int loop_count = 0;
5933
5934 if (is_windows_9x () == TRUE || !is_symlink (file))
5935 return (char *)file;
5936
5937 if (w32_unicode_filenames)
5938 {
5939 wchar_t file_w[MAX_PATH];
5940
5941 filename_to_utf16 (file, file_w);
5942 if (GetFullPathNameW (file_w, MAX_PATH, link_w, NULL) == 0)
5943 return (char *)file;
5944 filename_from_utf16 (link_w, link);
5945 }
5946 else
5947 {
5948 char file_a[MAX_PATH];
5949
5950 filename_to_ansi (file, file_a);
5951 if (GetFullPathNameA (file_a, MAX_PATH, link_a, NULL) == 0)
5952 return (char *)file;
5953 filename_from_ansi (link_a, link);
5954 }
5955 link_len = strlen (link);
5956
5957 target[0] = '\0';
5958 do {
5959
5960 /* Remove trailing slashes, as we want to resolve the last
5961 non-trivial part of the link name. */
5962 while (link_len > 3 && IS_DIRECTORY_SEP (link[link_len-1]))
5963 link[link_len--] = '\0';
5964
5965 res = readlink (link, target, MAX_UTF8_PATH);
5966 if (res > 0)
5967 {
5968 target[res] = '\0';
5969 if (!(IS_DEVICE_SEP (target[1])
5970 || (IS_DIRECTORY_SEP (target[0]) && IS_DIRECTORY_SEP (target[1]))))
5971 {
5972 /* Target is relative. Append it to the directory part of
5973 the symlink, then copy the result back to target. */
5974 char *p = link + link_len;
5975
5976 while (p > link && !IS_ANY_SEP (p[-1]))
5977 p--;
5978 strcpy (p, target);
5979 strcpy (target, link);
5980 }
5981 /* Resolve any "." and ".." to get a fully-qualified file name
5982 in link[] again. */
5983 if (w32_unicode_filenames)
5984 {
5985 filename_to_utf16 (target, target_w);
5986 link_len = GetFullPathNameW (target_w, MAX_PATH, link_w, NULL);
5987 if (link_len > 0)
5988 filename_from_utf16 (link_w, link);
5989 }
5990 else
5991 {
5992 filename_to_ansi (target, target_a);
5993 link_len = GetFullPathNameA (target_a, MAX_PATH, link_a, NULL);
5994 if (link_len > 0)
5995 filename_from_ansi (link_a, link);
5996 }
5997 link_len = strlen (link);
5998 }
5999 } while (res > 0 && link_len > 0 && ++loop_count <= 100);
6000
6001 if (loop_count > 100)
6002 errno = ELOOP;
6003
6004 if (target[0] == '\0') /* not a single call to readlink succeeded */
6005 return (char *)file;
6006 return target;
6007 }
6008
6009 \f
6010 /* Posix ACL emulation. */
6011
6012 int
6013 acl_valid (acl_t acl)
6014 {
6015 return is_valid_security_descriptor ((PSECURITY_DESCRIPTOR)acl) ? 0 : -1;
6016 }
6017
6018 char *
6019 acl_to_text (acl_t acl, ssize_t *size)
6020 {
6021 LPTSTR str_acl;
6022 SECURITY_INFORMATION flags =
6023 OWNER_SECURITY_INFORMATION |
6024 GROUP_SECURITY_INFORMATION |
6025 DACL_SECURITY_INFORMATION;
6026 char *retval = NULL;
6027 ULONG local_size;
6028 int e = errno;
6029
6030 errno = 0;
6031
6032 if (convert_sd_to_sddl ((PSECURITY_DESCRIPTOR)acl, SDDL_REVISION_1, flags, &str_acl, &local_size))
6033 {
6034 errno = e;
6035 /* We don't want to mix heaps, so we duplicate the string in our
6036 heap and free the one allocated by the API. */
6037 retval = xstrdup (str_acl);
6038 if (size)
6039 *size = local_size;
6040 LocalFree (str_acl);
6041 }
6042 else if (errno != ENOTSUP)
6043 errno = EINVAL;
6044
6045 return retval;
6046 }
6047
6048 acl_t
6049 acl_from_text (const char *acl_str)
6050 {
6051 PSECURITY_DESCRIPTOR psd, retval = NULL;
6052 ULONG sd_size;
6053 int e = errno;
6054
6055 errno = 0;
6056
6057 if (convert_sddl_to_sd (acl_str, SDDL_REVISION_1, &psd, &sd_size))
6058 {
6059 errno = e;
6060 retval = xmalloc (sd_size);
6061 memcpy (retval, psd, sd_size);
6062 LocalFree (psd);
6063 }
6064 else if (errno != ENOTSUP)
6065 errno = EINVAL;
6066
6067 return retval;
6068 }
6069
6070 int
6071 acl_free (void *ptr)
6072 {
6073 xfree (ptr);
6074 return 0;
6075 }
6076
6077 acl_t
6078 acl_get_file (const char *fname, acl_type_t type)
6079 {
6080 PSECURITY_DESCRIPTOR psd = NULL;
6081 const char *filename;
6082
6083 if (type == ACL_TYPE_ACCESS)
6084 {
6085 DWORD sd_len, err;
6086 SECURITY_INFORMATION si =
6087 OWNER_SECURITY_INFORMATION |
6088 GROUP_SECURITY_INFORMATION |
6089 DACL_SECURITY_INFORMATION ;
6090 int e = errno;
6091
6092 filename = map_w32_filename (fname, NULL);
6093 if ((volume_info.flags & FILE_SUPPORTS_REPARSE_POINTS) != 0)
6094 fname = chase_symlinks (filename);
6095 else
6096 fname = filename;
6097
6098 errno = 0;
6099 if (!get_file_security (fname, si, psd, 0, &sd_len)
6100 && errno != ENOTSUP)
6101 {
6102 err = GetLastError ();
6103 if (err == ERROR_INSUFFICIENT_BUFFER)
6104 {
6105 psd = xmalloc (sd_len);
6106 if (!get_file_security (fname, si, psd, sd_len, &sd_len))
6107 {
6108 xfree (psd);
6109 errno = EIO;
6110 psd = NULL;
6111 }
6112 }
6113 else if (err == ERROR_FILE_NOT_FOUND
6114 || err == ERROR_PATH_NOT_FOUND
6115 /* ERROR_INVALID_NAME is what we get if
6116 w32-unicode-filenames is nil and the file cannot
6117 be encoded in the current ANSI codepage. */
6118 || err == ERROR_INVALID_NAME)
6119 errno = ENOENT;
6120 else
6121 errno = EIO;
6122 }
6123 else if (!errno)
6124 errno = e;
6125 }
6126 else if (type != ACL_TYPE_DEFAULT)
6127 errno = EINVAL;
6128
6129 return psd;
6130 }
6131
6132 int
6133 acl_set_file (const char *fname, acl_type_t type, acl_t acl)
6134 {
6135 TOKEN_PRIVILEGES old1, old2;
6136 DWORD err;
6137 int st = 0, retval = -1;
6138 SECURITY_INFORMATION flags = 0;
6139 PSID psidOwner, psidGroup;
6140 PACL pacl;
6141 BOOL dflt;
6142 BOOL dacl_present;
6143 int e;
6144 const char *filename;
6145
6146 if (acl_valid (acl) != 0
6147 || (type != ACL_TYPE_DEFAULT && type != ACL_TYPE_ACCESS))
6148 {
6149 errno = EINVAL;
6150 return -1;
6151 }
6152
6153 if (type == ACL_TYPE_DEFAULT)
6154 {
6155 errno = ENOSYS;
6156 return -1;
6157 }
6158
6159 filename = map_w32_filename (fname, NULL);
6160 if ((volume_info.flags & FILE_SUPPORTS_REPARSE_POINTS) != 0)
6161 fname = chase_symlinks (filename);
6162 else
6163 fname = filename;
6164
6165 if (get_security_descriptor_owner ((PSECURITY_DESCRIPTOR)acl, &psidOwner,
6166 &dflt)
6167 && psidOwner)
6168 flags |= OWNER_SECURITY_INFORMATION;
6169 if (get_security_descriptor_group ((PSECURITY_DESCRIPTOR)acl, &psidGroup,
6170 &dflt)
6171 && psidGroup)
6172 flags |= GROUP_SECURITY_INFORMATION;
6173 if (get_security_descriptor_dacl ((PSECURITY_DESCRIPTOR)acl, &dacl_present,
6174 &pacl, &dflt)
6175 && dacl_present)
6176 flags |= DACL_SECURITY_INFORMATION;
6177 if (!flags)
6178 return 0;
6179
6180 /* According to KB-245153, setting the owner will succeed if either:
6181 (1) the caller is the user who will be the new owner, and has the
6182 SE_TAKE_OWNERSHIP privilege, or
6183 (2) the caller has the SE_RESTORE privilege, in which case she can
6184 set any valid user or group as the owner
6185
6186 We request below both SE_TAKE_OWNERSHIP and SE_RESTORE
6187 privileges, and disregard any failures in obtaining them. If
6188 these privileges cannot be obtained, and do not already exist in
6189 the calling thread's security token, this function could fail
6190 with EPERM. */
6191 if (enable_privilege (SE_TAKE_OWNERSHIP_NAME, TRUE, &old1))
6192 st++;
6193 if (enable_privilege (SE_RESTORE_NAME, TRUE, &old2))
6194 st++;
6195
6196 e = errno;
6197 errno = 0;
6198 /* SetFileSecurity is deprecated by MS, and sometimes fails when
6199 DACL inheritance is involved, but it seems to preserve ownership
6200 better than SetNamedSecurityInfo, which is important e.g., in
6201 copy-file. */
6202 if (!set_file_security (fname, flags, (PSECURITY_DESCRIPTOR)acl))
6203 {
6204 err = GetLastError ();
6205
6206 if (errno != ENOTSUP)
6207 err = set_named_security_info (fname, SE_FILE_OBJECT, flags,
6208 psidOwner, psidGroup, pacl, NULL);
6209 }
6210 else
6211 err = ERROR_SUCCESS;
6212 if (err != ERROR_SUCCESS)
6213 {
6214 if (errno == ENOTSUP)
6215 ;
6216 else if (err == ERROR_INVALID_OWNER
6217 || err == ERROR_NOT_ALL_ASSIGNED
6218 || err == ERROR_ACCESS_DENIED)
6219 {
6220 /* Maybe the requested ACL and the one the file already has
6221 are identical, in which case we can silently ignore the
6222 failure. (And no, Windows doesn't.) */
6223 acl_t current_acl = acl_get_file (fname, ACL_TYPE_ACCESS);
6224
6225 errno = EPERM;
6226 if (current_acl)
6227 {
6228 char *acl_from = acl_to_text (current_acl, NULL);
6229 char *acl_to = acl_to_text (acl, NULL);
6230
6231 if (acl_from && acl_to && xstrcasecmp (acl_from, acl_to) == 0)
6232 {
6233 retval = 0;
6234 errno = e;
6235 }
6236 if (acl_from)
6237 acl_free (acl_from);
6238 if (acl_to)
6239 acl_free (acl_to);
6240 acl_free (current_acl);
6241 }
6242 }
6243 else if (err == ERROR_FILE_NOT_FOUND
6244 || err == ERROR_PATH_NOT_FOUND
6245 /* ERROR_INVALID_NAME is what we get if
6246 w32-unicode-filenames is nil and the file cannot be
6247 encoded in the current ANSI codepage. */
6248 || err == ERROR_INVALID_NAME)
6249 errno = ENOENT;
6250 else
6251 errno = EACCES;
6252 }
6253 else
6254 {
6255 retval = 0;
6256 errno = e;
6257 }
6258
6259 if (st)
6260 {
6261 if (st >= 2)
6262 restore_privilege (&old2);
6263 restore_privilege (&old1);
6264 revert_to_self ();
6265 }
6266
6267 return retval;
6268 }
6269
6270 \f
6271 /* MS-Windows version of careadlinkat (cf. ../lib/careadlinkat.c). We
6272 have a fixed max size for file names, so we don't need the kind of
6273 alloc/malloc/realloc dance the gnulib version does. We also don't
6274 support FD-relative symlinks. */
6275 char *
6276 careadlinkat (int fd, char const *filename,
6277 char *buffer, size_t buffer_size,
6278 struct allocator const *alloc,
6279 ssize_t (*preadlinkat) (int, char const *, char *, size_t))
6280 {
6281 char linkname[MAX_UTF8_PATH];
6282 ssize_t link_size;
6283
6284 link_size = preadlinkat (fd, filename, linkname, sizeof(linkname));
6285
6286 if (link_size > 0)
6287 {
6288 char *retval = buffer;
6289
6290 linkname[link_size++] = '\0';
6291 if (link_size > buffer_size)
6292 retval = (char *)(alloc ? alloc->allocate : xmalloc) (link_size);
6293 if (retval)
6294 memcpy (retval, linkname, link_size);
6295
6296 return retval;
6297 }
6298 return NULL;
6299 }
6300
6301 int
6302 w32_copy_file (const char *from, const char *to,
6303 int keep_time, int preserve_ownership, int copy_acls)
6304 {
6305 acl_t acl = NULL;
6306 BOOL copy_result;
6307 wchar_t from_w[MAX_PATH], to_w[MAX_PATH];
6308 char from_a[MAX_PATH], to_a[MAX_PATH];
6309
6310 /* We ignore preserve_ownership for now. */
6311 preserve_ownership = preserve_ownership;
6312
6313 if (copy_acls)
6314 {
6315 acl = acl_get_file (from, ACL_TYPE_ACCESS);
6316 if (acl == NULL && acl_errno_valid (errno))
6317 return -2;
6318 }
6319 if (w32_unicode_filenames)
6320 {
6321 filename_to_utf16 (from, from_w);
6322 filename_to_utf16 (to, to_w);
6323 copy_result = CopyFileW (from_w, to_w, FALSE);
6324 }
6325 else
6326 {
6327 filename_to_ansi (from, from_a);
6328 filename_to_ansi (to, to_a);
6329 copy_result = CopyFileA (from_a, to_a, FALSE);
6330 }
6331 if (!copy_result)
6332 {
6333 /* CopyFile doesn't set errno when it fails. By far the most
6334 "popular" reason is that the target is read-only. */
6335 DWORD err = GetLastError ();
6336
6337 switch (err)
6338 {
6339 case ERROR_FILE_NOT_FOUND:
6340 errno = ENOENT;
6341 break;
6342 case ERROR_ACCESS_DENIED:
6343 errno = EACCES;
6344 break;
6345 case ERROR_ENCRYPTION_FAILED:
6346 errno = EIO;
6347 break;
6348 default:
6349 errno = EPERM;
6350 break;
6351 }
6352
6353 if (acl)
6354 acl_free (acl);
6355 return -1;
6356 }
6357 /* CopyFile retains the timestamp by default. However, see
6358 "Community Additions" for CopyFile: it sounds like that is not
6359 entirely true. Testing on Windows XP confirms that modified time
6360 is copied, but creation and last-access times are not.
6361 FIXME? */
6362 else if (!keep_time)
6363 {
6364 struct timespec now;
6365 DWORD attributes;
6366
6367 if (w32_unicode_filenames)
6368 {
6369 /* Ensure file is writable while its times are set. */
6370 attributes = GetFileAttributesW (to_w);
6371 SetFileAttributesW (to_w, attributes & ~FILE_ATTRIBUTE_READONLY);
6372 now = current_timespec ();
6373 if (set_file_times (-1, to, now, now))
6374 {
6375 /* Restore original attributes. */
6376 SetFileAttributesW (to_w, attributes);
6377 if (acl)
6378 acl_free (acl);
6379 return -3;
6380 }
6381 /* Restore original attributes. */
6382 SetFileAttributesW (to_w, attributes);
6383 }
6384 else
6385 {
6386 attributes = GetFileAttributesA (to_a);
6387 SetFileAttributesA (to_a, attributes & ~FILE_ATTRIBUTE_READONLY);
6388 now = current_timespec ();
6389 if (set_file_times (-1, to, now, now))
6390 {
6391 SetFileAttributesA (to_a, attributes);
6392 if (acl)
6393 acl_free (acl);
6394 return -3;
6395 }
6396 SetFileAttributesA (to_a, attributes);
6397 }
6398 }
6399 if (acl != NULL)
6400 {
6401 bool fail =
6402 acl_set_file (to, ACL_TYPE_ACCESS, acl) != 0;
6403 acl_free (acl);
6404 if (fail && acl_errno_valid (errno))
6405 return -4;
6406 }
6407
6408 return 0;
6409 }
6410
6411 \f
6412 /* Support for browsing other processes and their attributes. See
6413 process.c for the Lisp bindings. */
6414
6415 /* Helper wrapper functions. */
6416
6417 static HANDLE WINAPI
6418 create_toolhelp32_snapshot (DWORD Flags, DWORD Ignored)
6419 {
6420 static CreateToolhelp32Snapshot_Proc s_pfn_Create_Toolhelp32_Snapshot = NULL;
6421
6422 if (g_b_init_create_toolhelp32_snapshot == 0)
6423 {
6424 g_b_init_create_toolhelp32_snapshot = 1;
6425 s_pfn_Create_Toolhelp32_Snapshot = (CreateToolhelp32Snapshot_Proc)
6426 GetProcAddress (GetModuleHandle ("kernel32.dll"),
6427 "CreateToolhelp32Snapshot");
6428 }
6429 if (s_pfn_Create_Toolhelp32_Snapshot == NULL)
6430 {
6431 return INVALID_HANDLE_VALUE;
6432 }
6433 return (s_pfn_Create_Toolhelp32_Snapshot (Flags, Ignored));
6434 }
6435
6436 static BOOL WINAPI
6437 process32_first (HANDLE hSnapshot, LPPROCESSENTRY32 lppe)
6438 {
6439 static Process32First_Proc s_pfn_Process32_First = NULL;
6440
6441 if (g_b_init_process32_first == 0)
6442 {
6443 g_b_init_process32_first = 1;
6444 s_pfn_Process32_First = (Process32First_Proc)
6445 GetProcAddress (GetModuleHandle ("kernel32.dll"),
6446 "Process32First");
6447 }
6448 if (s_pfn_Process32_First == NULL)
6449 {
6450 return FALSE;
6451 }
6452 return (s_pfn_Process32_First (hSnapshot, lppe));
6453 }
6454
6455 static BOOL WINAPI
6456 process32_next (HANDLE hSnapshot, LPPROCESSENTRY32 lppe)
6457 {
6458 static Process32Next_Proc s_pfn_Process32_Next = NULL;
6459
6460 if (g_b_init_process32_next == 0)
6461 {
6462 g_b_init_process32_next = 1;
6463 s_pfn_Process32_Next = (Process32Next_Proc)
6464 GetProcAddress (GetModuleHandle ("kernel32.dll"),
6465 "Process32Next");
6466 }
6467 if (s_pfn_Process32_Next == NULL)
6468 {
6469 return FALSE;
6470 }
6471 return (s_pfn_Process32_Next (hSnapshot, lppe));
6472 }
6473
6474 static BOOL WINAPI
6475 open_thread_token (HANDLE ThreadHandle,
6476 DWORD DesiredAccess,
6477 BOOL OpenAsSelf,
6478 PHANDLE TokenHandle)
6479 {
6480 static OpenThreadToken_Proc s_pfn_Open_Thread_Token = NULL;
6481 HMODULE hm_advapi32 = NULL;
6482 if (is_windows_9x () == TRUE)
6483 {
6484 SetLastError (ERROR_NOT_SUPPORTED);
6485 return FALSE;
6486 }
6487 if (g_b_init_open_thread_token == 0)
6488 {
6489 g_b_init_open_thread_token = 1;
6490 hm_advapi32 = LoadLibrary ("Advapi32.dll");
6491 s_pfn_Open_Thread_Token =
6492 (OpenThreadToken_Proc) GetProcAddress (hm_advapi32, "OpenThreadToken");
6493 }
6494 if (s_pfn_Open_Thread_Token == NULL)
6495 {
6496 SetLastError (ERROR_NOT_SUPPORTED);
6497 return FALSE;
6498 }
6499 return (
6500 s_pfn_Open_Thread_Token (
6501 ThreadHandle,
6502 DesiredAccess,
6503 OpenAsSelf,
6504 TokenHandle)
6505 );
6506 }
6507
6508 static BOOL WINAPI
6509 impersonate_self (SECURITY_IMPERSONATION_LEVEL ImpersonationLevel)
6510 {
6511 static ImpersonateSelf_Proc s_pfn_Impersonate_Self = NULL;
6512 HMODULE hm_advapi32 = NULL;
6513 if (is_windows_9x () == TRUE)
6514 {
6515 return FALSE;
6516 }
6517 if (g_b_init_impersonate_self == 0)
6518 {
6519 g_b_init_impersonate_self = 1;
6520 hm_advapi32 = LoadLibrary ("Advapi32.dll");
6521 s_pfn_Impersonate_Self =
6522 (ImpersonateSelf_Proc) GetProcAddress (hm_advapi32, "ImpersonateSelf");
6523 }
6524 if (s_pfn_Impersonate_Self == NULL)
6525 {
6526 return FALSE;
6527 }
6528 return s_pfn_Impersonate_Self (ImpersonationLevel);
6529 }
6530
6531 static BOOL WINAPI
6532 revert_to_self (void)
6533 {
6534 static RevertToSelf_Proc s_pfn_Revert_To_Self = NULL;
6535 HMODULE hm_advapi32 = NULL;
6536 if (is_windows_9x () == TRUE)
6537 {
6538 return FALSE;
6539 }
6540 if (g_b_init_revert_to_self == 0)
6541 {
6542 g_b_init_revert_to_self = 1;
6543 hm_advapi32 = LoadLibrary ("Advapi32.dll");
6544 s_pfn_Revert_To_Self =
6545 (RevertToSelf_Proc) GetProcAddress (hm_advapi32, "RevertToSelf");
6546 }
6547 if (s_pfn_Revert_To_Self == NULL)
6548 {
6549 return FALSE;
6550 }
6551 return s_pfn_Revert_To_Self ();
6552 }
6553
6554 static BOOL WINAPI
6555 get_process_memory_info (HANDLE h_proc,
6556 PPROCESS_MEMORY_COUNTERS mem_counters,
6557 DWORD bufsize)
6558 {
6559 static GetProcessMemoryInfo_Proc s_pfn_Get_Process_Memory_Info = NULL;
6560 HMODULE hm_psapi = NULL;
6561 if (is_windows_9x () == TRUE)
6562 {
6563 return FALSE;
6564 }
6565 if (g_b_init_get_process_memory_info == 0)
6566 {
6567 g_b_init_get_process_memory_info = 1;
6568 hm_psapi = LoadLibrary ("Psapi.dll");
6569 if (hm_psapi)
6570 s_pfn_Get_Process_Memory_Info = (GetProcessMemoryInfo_Proc)
6571 GetProcAddress (hm_psapi, "GetProcessMemoryInfo");
6572 }
6573 if (s_pfn_Get_Process_Memory_Info == NULL)
6574 {
6575 return FALSE;
6576 }
6577 return s_pfn_Get_Process_Memory_Info (h_proc, mem_counters, bufsize);
6578 }
6579
6580 static BOOL WINAPI
6581 get_process_working_set_size (HANDLE h_proc,
6582 PSIZE_T minrss,
6583 PSIZE_T maxrss)
6584 {
6585 static GetProcessWorkingSetSize_Proc
6586 s_pfn_Get_Process_Working_Set_Size = NULL;
6587
6588 if (is_windows_9x () == TRUE)
6589 {
6590 return FALSE;
6591 }
6592 if (g_b_init_get_process_working_set_size == 0)
6593 {
6594 g_b_init_get_process_working_set_size = 1;
6595 s_pfn_Get_Process_Working_Set_Size = (GetProcessWorkingSetSize_Proc)
6596 GetProcAddress (GetModuleHandle ("kernel32.dll"),
6597 "GetProcessWorkingSetSize");
6598 }
6599 if (s_pfn_Get_Process_Working_Set_Size == NULL)
6600 {
6601 return FALSE;
6602 }
6603 return s_pfn_Get_Process_Working_Set_Size (h_proc, minrss, maxrss);
6604 }
6605
6606 static BOOL WINAPI
6607 global_memory_status (MEMORYSTATUS *buf)
6608 {
6609 static GlobalMemoryStatus_Proc s_pfn_Global_Memory_Status = NULL;
6610
6611 if (is_windows_9x () == TRUE)
6612 {
6613 return FALSE;
6614 }
6615 if (g_b_init_global_memory_status == 0)
6616 {
6617 g_b_init_global_memory_status = 1;
6618 s_pfn_Global_Memory_Status = (GlobalMemoryStatus_Proc)
6619 GetProcAddress (GetModuleHandle ("kernel32.dll"),
6620 "GlobalMemoryStatus");
6621 }
6622 if (s_pfn_Global_Memory_Status == NULL)
6623 {
6624 return FALSE;
6625 }
6626 return s_pfn_Global_Memory_Status (buf);
6627 }
6628
6629 static BOOL WINAPI
6630 global_memory_status_ex (MEMORY_STATUS_EX *buf)
6631 {
6632 static GlobalMemoryStatusEx_Proc s_pfn_Global_Memory_Status_Ex = NULL;
6633
6634 if (is_windows_9x () == TRUE)
6635 {
6636 return FALSE;
6637 }
6638 if (g_b_init_global_memory_status_ex == 0)
6639 {
6640 g_b_init_global_memory_status_ex = 1;
6641 s_pfn_Global_Memory_Status_Ex = (GlobalMemoryStatusEx_Proc)
6642 GetProcAddress (GetModuleHandle ("kernel32.dll"),
6643 "GlobalMemoryStatusEx");
6644 }
6645 if (s_pfn_Global_Memory_Status_Ex == NULL)
6646 {
6647 return FALSE;
6648 }
6649 return s_pfn_Global_Memory_Status_Ex (buf);
6650 }
6651
6652 Lisp_Object
6653 list_system_processes (void)
6654 {
6655 Lisp_Object proclist = Qnil;
6656 HANDLE h_snapshot;
6657
6658 h_snapshot = create_toolhelp32_snapshot (TH32CS_SNAPPROCESS, 0);
6659
6660 if (h_snapshot != INVALID_HANDLE_VALUE)
6661 {
6662 PROCESSENTRY32 proc_entry;
6663 DWORD proc_id;
6664 BOOL res;
6665
6666 proc_entry.dwSize = sizeof (PROCESSENTRY32);
6667 for (res = process32_first (h_snapshot, &proc_entry); res;
6668 res = process32_next (h_snapshot, &proc_entry))
6669 {
6670 proc_id = proc_entry.th32ProcessID;
6671 proclist = Fcons (make_fixnum_or_float (proc_id), proclist);
6672 }
6673
6674 CloseHandle (h_snapshot);
6675 proclist = Fnreverse (proclist);
6676 }
6677
6678 return proclist;
6679 }
6680
6681 static int
6682 enable_privilege (LPCTSTR priv_name, BOOL enable_p, TOKEN_PRIVILEGES *old_priv)
6683 {
6684 TOKEN_PRIVILEGES priv;
6685 DWORD priv_size = sizeof (priv);
6686 DWORD opriv_size = sizeof (*old_priv);
6687 HANDLE h_token = NULL;
6688 HANDLE h_thread = GetCurrentThread ();
6689 int ret_val = 0;
6690 BOOL res;
6691
6692 res = open_thread_token (h_thread,
6693 TOKEN_QUERY | TOKEN_ADJUST_PRIVILEGES,
6694 FALSE, &h_token);
6695 if (!res && GetLastError () == ERROR_NO_TOKEN)
6696 {
6697 if (impersonate_self (SecurityImpersonation))
6698 res = open_thread_token (h_thread,
6699 TOKEN_QUERY | TOKEN_ADJUST_PRIVILEGES,
6700 FALSE, &h_token);
6701 }
6702 if (res)
6703 {
6704 priv.PrivilegeCount = 1;
6705 priv.Privileges[0].Attributes = enable_p ? SE_PRIVILEGE_ENABLED : 0;
6706 LookupPrivilegeValue (NULL, priv_name, &priv.Privileges[0].Luid);
6707 if (AdjustTokenPrivileges (h_token, FALSE, &priv, priv_size,
6708 old_priv, &opriv_size)
6709 && GetLastError () != ERROR_NOT_ALL_ASSIGNED)
6710 ret_val = 1;
6711 }
6712 if (h_token)
6713 CloseHandle (h_token);
6714
6715 return ret_val;
6716 }
6717
6718 static int
6719 restore_privilege (TOKEN_PRIVILEGES *priv)
6720 {
6721 DWORD priv_size = sizeof (*priv);
6722 HANDLE h_token = NULL;
6723 int ret_val = 0;
6724
6725 if (open_thread_token (GetCurrentThread (),
6726 TOKEN_QUERY | TOKEN_ADJUST_PRIVILEGES,
6727 FALSE, &h_token))
6728 {
6729 if (AdjustTokenPrivileges (h_token, FALSE, priv, priv_size, NULL, NULL)
6730 && GetLastError () != ERROR_NOT_ALL_ASSIGNED)
6731 ret_val = 1;
6732 }
6733 if (h_token)
6734 CloseHandle (h_token);
6735
6736 return ret_val;
6737 }
6738
6739 static Lisp_Object
6740 ltime (ULONGLONG time_100ns)
6741 {
6742 ULONGLONG time_sec = time_100ns / 10000000;
6743 int subsec = time_100ns % 10000000;
6744 return list4i (time_sec >> 16, time_sec & 0xffff,
6745 subsec / 10, subsec % 10 * 100000);
6746 }
6747
6748 #define U64_TO_LISP_TIME(time) ltime (time)
6749
6750 static int
6751 process_times (HANDLE h_proc, Lisp_Object *ctime, Lisp_Object *etime,
6752 Lisp_Object *stime, Lisp_Object *utime, Lisp_Object *ttime,
6753 double *pcpu)
6754 {
6755 FILETIME ft_creation, ft_exit, ft_kernel, ft_user, ft_current;
6756 ULONGLONG tem1, tem2, tem3, tem;
6757
6758 if (!h_proc
6759 || !get_process_times_fn
6760 || !(*get_process_times_fn) (h_proc, &ft_creation, &ft_exit,
6761 &ft_kernel, &ft_user))
6762 return 0;
6763
6764 GetSystemTimeAsFileTime (&ft_current);
6765
6766 FILETIME_TO_U64 (tem1, ft_kernel);
6767 *stime = U64_TO_LISP_TIME (tem1);
6768
6769 FILETIME_TO_U64 (tem2, ft_user);
6770 *utime = U64_TO_LISP_TIME (tem2);
6771
6772 tem3 = tem1 + tem2;
6773 *ttime = U64_TO_LISP_TIME (tem3);
6774
6775 FILETIME_TO_U64 (tem, ft_creation);
6776 /* Process no 4 (System) returns zero creation time. */
6777 if (tem)
6778 tem -= utc_base;
6779 *ctime = U64_TO_LISP_TIME (tem);
6780
6781 if (tem)
6782 {
6783 FILETIME_TO_U64 (tem3, ft_current);
6784 tem = (tem3 - utc_base) - tem;
6785 }
6786 *etime = U64_TO_LISP_TIME (tem);
6787
6788 if (tem)
6789 {
6790 *pcpu = 100.0 * (tem1 + tem2) / tem;
6791 if (*pcpu > 100)
6792 *pcpu = 100.0;
6793 }
6794 else
6795 *pcpu = 0;
6796
6797 return 1;
6798 }
6799
6800 Lisp_Object
6801 system_process_attributes (Lisp_Object pid)
6802 {
6803 Lisp_Object attrs = Qnil;
6804 Lisp_Object cmd_str, decoded_cmd, tem;
6805 HANDLE h_snapshot, h_proc;
6806 DWORD proc_id;
6807 int found_proc = 0;
6808 char uname[UNLEN+1], gname[GNLEN+1], domain[1025];
6809 DWORD ulength = sizeof (uname), dlength = sizeof (domain), needed;
6810 DWORD glength = sizeof (gname);
6811 HANDLE token = NULL;
6812 SID_NAME_USE user_type;
6813 unsigned char *buf = NULL;
6814 DWORD blen = 0;
6815 TOKEN_USER user_token;
6816 TOKEN_PRIMARY_GROUP group_token;
6817 unsigned euid;
6818 unsigned egid;
6819 PROCESS_MEMORY_COUNTERS mem;
6820 PROCESS_MEMORY_COUNTERS_EX mem_ex;
6821 SIZE_T minrss, maxrss;
6822 MEMORYSTATUS memst;
6823 MEMORY_STATUS_EX memstex;
6824 double totphys = 0.0;
6825 Lisp_Object ctime, stime, utime, etime, ttime;
6826 double pcpu;
6827 BOOL result = FALSE;
6828
6829 CHECK_NUMBER_OR_FLOAT (pid);
6830 proc_id = FLOATP (pid) ? XFLOAT_DATA (pid) : XINT (pid);
6831
6832 h_snapshot = create_toolhelp32_snapshot (TH32CS_SNAPPROCESS, 0);
6833
6834 if (h_snapshot != INVALID_HANDLE_VALUE)
6835 {
6836 PROCESSENTRY32 pe;
6837 BOOL res;
6838
6839 pe.dwSize = sizeof (PROCESSENTRY32);
6840 for (res = process32_first (h_snapshot, &pe); res;
6841 res = process32_next (h_snapshot, &pe))
6842 {
6843 if (proc_id == pe.th32ProcessID)
6844 {
6845 if (proc_id == 0)
6846 decoded_cmd = build_string ("Idle");
6847 else
6848 {
6849 /* Decode the command name from locale-specific
6850 encoding. */
6851 cmd_str = build_unibyte_string (pe.szExeFile);
6852
6853 decoded_cmd =
6854 code_convert_string_norecord (cmd_str,
6855 Vlocale_coding_system, 0);
6856 }
6857 attrs = Fcons (Fcons (Qcomm, decoded_cmd), attrs);
6858 attrs = Fcons (Fcons (Qppid,
6859 make_fixnum_or_float (pe.th32ParentProcessID)),
6860 attrs);
6861 attrs = Fcons (Fcons (Qpri, make_number (pe.pcPriClassBase)),
6862 attrs);
6863 attrs = Fcons (Fcons (Qthcount,
6864 make_fixnum_or_float (pe.cntThreads)),
6865 attrs);
6866 found_proc = 1;
6867 break;
6868 }
6869 }
6870
6871 CloseHandle (h_snapshot);
6872 }
6873
6874 if (!found_proc)
6875 return Qnil;
6876
6877 h_proc = OpenProcess (PROCESS_QUERY_INFORMATION | PROCESS_VM_READ,
6878 FALSE, proc_id);
6879 /* If we were denied a handle to the process, try again after
6880 enabling the SeDebugPrivilege in our process. */
6881 if (!h_proc)
6882 {
6883 TOKEN_PRIVILEGES priv_current;
6884
6885 if (enable_privilege (SE_DEBUG_NAME, TRUE, &priv_current))
6886 {
6887 h_proc = OpenProcess (PROCESS_QUERY_INFORMATION | PROCESS_VM_READ,
6888 FALSE, proc_id);
6889 restore_privilege (&priv_current);
6890 revert_to_self ();
6891 }
6892 }
6893 if (h_proc)
6894 {
6895 result = open_process_token (h_proc, TOKEN_QUERY, &token);
6896 if (result)
6897 {
6898 result = get_token_information (token, TokenUser, NULL, 0, &blen);
6899 if (!result && GetLastError () == ERROR_INSUFFICIENT_BUFFER)
6900 {
6901 buf = xmalloc (blen);
6902 result = get_token_information (token, TokenUser,
6903 (LPVOID)buf, blen, &needed);
6904 if (result)
6905 {
6906 memcpy (&user_token, buf, sizeof (user_token));
6907 if (!w32_cached_id (user_token.User.Sid, &euid, uname))
6908 {
6909 euid = get_rid (user_token.User.Sid);
6910 result = lookup_account_sid (NULL, user_token.User.Sid,
6911 uname, &ulength,
6912 domain, &dlength,
6913 &user_type);
6914 if (result)
6915 w32_add_to_cache (user_token.User.Sid, euid, uname);
6916 else
6917 {
6918 strcpy (uname, "unknown");
6919 result = TRUE;
6920 }
6921 }
6922 ulength = strlen (uname);
6923 }
6924 }
6925 }
6926 if (result)
6927 {
6928 /* Determine a reasonable euid and gid values. */
6929 if (xstrcasecmp ("administrator", uname) == 0)
6930 {
6931 euid = 500; /* well-known Administrator uid */
6932 egid = 513; /* well-known None gid */
6933 }
6934 else
6935 {
6936 /* Get group id and name. */
6937 result = get_token_information (token, TokenPrimaryGroup,
6938 (LPVOID)buf, blen, &needed);
6939 if (!result && GetLastError () == ERROR_INSUFFICIENT_BUFFER)
6940 {
6941 buf = xrealloc (buf, blen = needed);
6942 result = get_token_information (token, TokenPrimaryGroup,
6943 (LPVOID)buf, blen, &needed);
6944 }
6945 if (result)
6946 {
6947 memcpy (&group_token, buf, sizeof (group_token));
6948 if (!w32_cached_id (group_token.PrimaryGroup, &egid, gname))
6949 {
6950 egid = get_rid (group_token.PrimaryGroup);
6951 dlength = sizeof (domain);
6952 result =
6953 lookup_account_sid (NULL, group_token.PrimaryGroup,
6954 gname, &glength, NULL, &dlength,
6955 &user_type);
6956 if (result)
6957 w32_add_to_cache (group_token.PrimaryGroup,
6958 egid, gname);
6959 else
6960 {
6961 strcpy (gname, "None");
6962 result = TRUE;
6963 }
6964 }
6965 glength = strlen (gname);
6966 }
6967 }
6968 }
6969 xfree (buf);
6970 }
6971 if (!result)
6972 {
6973 if (!is_windows_9x ())
6974 {
6975 /* We couldn't open the process token, presumably because of
6976 insufficient access rights. Assume this process is run
6977 by the system. */
6978 strcpy (uname, "SYSTEM");
6979 strcpy (gname, "None");
6980 euid = 18; /* SYSTEM */
6981 egid = 513; /* None */
6982 glength = strlen (gname);
6983 ulength = strlen (uname);
6984 }
6985 /* If we are running under Windows 9X, where security calls are
6986 not supported, we assume all processes are run by the current
6987 user. */
6988 else if (GetUserName (uname, &ulength))
6989 {
6990 if (xstrcasecmp ("administrator", uname) == 0)
6991 euid = 0;
6992 else
6993 euid = 123;
6994 egid = euid;
6995 strcpy (gname, "None");
6996 glength = strlen (gname);
6997 ulength = strlen (uname);
6998 }
6999 else
7000 {
7001 euid = 123;
7002 egid = 123;
7003 strcpy (uname, "administrator");
7004 ulength = strlen (uname);
7005 strcpy (gname, "None");
7006 glength = strlen (gname);
7007 }
7008 if (token)
7009 CloseHandle (token);
7010 }
7011
7012 attrs = Fcons (Fcons (Qeuid, make_fixnum_or_float (euid)), attrs);
7013 tem = make_unibyte_string (uname, ulength);
7014 attrs = Fcons (Fcons (Quser,
7015 code_convert_string_norecord (tem, Vlocale_coding_system, 0)),
7016 attrs);
7017 attrs = Fcons (Fcons (Qegid, make_fixnum_or_float (egid)), attrs);
7018 tem = make_unibyte_string (gname, glength);
7019 attrs = Fcons (Fcons (Qgroup,
7020 code_convert_string_norecord (tem, Vlocale_coding_system, 0)),
7021 attrs);
7022
7023 if (global_memory_status_ex (&memstex))
7024 #if __GNUC__ || (defined (_MSC_VER) && _MSC_VER >= 1300)
7025 totphys = memstex.ullTotalPhys / 1024.0;
7026 #else
7027 /* Visual Studio 6 cannot convert an unsigned __int64 type to
7028 double, so we need to do this for it... */
7029 {
7030 DWORD tot_hi = memstex.ullTotalPhys >> 32;
7031 DWORD tot_md = (memstex.ullTotalPhys & 0x00000000ffffffff) >> 10;
7032 DWORD tot_lo = memstex.ullTotalPhys % 1024;
7033
7034 totphys = tot_hi * 4194304.0 + tot_md + tot_lo / 1024.0;
7035 }
7036 #endif /* __GNUC__ || _MSC_VER >= 1300 */
7037 else if (global_memory_status (&memst))
7038 totphys = memst.dwTotalPhys / 1024.0;
7039
7040 if (h_proc
7041 && get_process_memory_info (h_proc, (PROCESS_MEMORY_COUNTERS *)&mem_ex,
7042 sizeof (mem_ex)))
7043 {
7044 SIZE_T rss = mem_ex.WorkingSetSize / 1024;
7045
7046 attrs = Fcons (Fcons (Qmajflt,
7047 make_fixnum_or_float (mem_ex.PageFaultCount)),
7048 attrs);
7049 attrs = Fcons (Fcons (Qvsize,
7050 make_fixnum_or_float (mem_ex.PrivateUsage / 1024)),
7051 attrs);
7052 attrs = Fcons (Fcons (Qrss, make_fixnum_or_float (rss)), attrs);
7053 if (totphys)
7054 attrs = Fcons (Fcons (Qpmem, make_float (100. * rss / totphys)), attrs);
7055 }
7056 else if (h_proc
7057 && get_process_memory_info (h_proc, &mem, sizeof (mem)))
7058 {
7059 SIZE_T rss = mem_ex.WorkingSetSize / 1024;
7060
7061 attrs = Fcons (Fcons (Qmajflt,
7062 make_fixnum_or_float (mem.PageFaultCount)),
7063 attrs);
7064 attrs = Fcons (Fcons (Qrss, make_fixnum_or_float (rss)), attrs);
7065 if (totphys)
7066 attrs = Fcons (Fcons (Qpmem, make_float (100. * rss / totphys)), attrs);
7067 }
7068 else if (h_proc
7069 && get_process_working_set_size (h_proc, &minrss, &maxrss))
7070 {
7071 DWORD rss = maxrss / 1024;
7072
7073 attrs = Fcons (Fcons (Qrss, make_fixnum_or_float (maxrss / 1024)), attrs);
7074 if (totphys)
7075 attrs = Fcons (Fcons (Qpmem, make_float (100. * rss / totphys)), attrs);
7076 }
7077
7078 if (process_times (h_proc, &ctime, &etime, &stime, &utime, &ttime, &pcpu))
7079 {
7080 attrs = Fcons (Fcons (Qutime, utime), attrs);
7081 attrs = Fcons (Fcons (Qstime, stime), attrs);
7082 attrs = Fcons (Fcons (Qtime, ttime), attrs);
7083 attrs = Fcons (Fcons (Qstart, ctime), attrs);
7084 attrs = Fcons (Fcons (Qetime, etime), attrs);
7085 attrs = Fcons (Fcons (Qpcpu, make_float (pcpu)), attrs);
7086 }
7087
7088 /* FIXME: Retrieve command line by walking the PEB of the process. */
7089
7090 if (h_proc)
7091 CloseHandle (h_proc);
7092 return attrs;
7093 }
7094
7095 int
7096 w32_memory_info (unsigned long long *totalram, unsigned long long *freeram,
7097 unsigned long long *totalswap, unsigned long long *freeswap)
7098 {
7099 MEMORYSTATUS memst;
7100 MEMORY_STATUS_EX memstex;
7101
7102 /* Use GlobalMemoryStatusEx if available, as it can report more than
7103 2GB of memory. */
7104 if (global_memory_status_ex (&memstex))
7105 {
7106 *totalram = memstex.ullTotalPhys;
7107 *freeram = memstex.ullAvailPhys;
7108 *totalswap = memstex.ullTotalPageFile;
7109 *freeswap = memstex.ullAvailPageFile;
7110 return 0;
7111 }
7112 else if (global_memory_status (&memst))
7113 {
7114 *totalram = memst.dwTotalPhys;
7115 *freeram = memst.dwAvailPhys;
7116 *totalswap = memst.dwTotalPageFile;
7117 *freeswap = memst.dwAvailPageFile;
7118 return 0;
7119 }
7120 else
7121 return -1;
7122 }
7123
7124 \f
7125 /* Wrappers for winsock functions to map between our file descriptors
7126 and winsock's handles; also set h_errno for convenience.
7127
7128 To allow Emacs to run on systems which don't have winsock support
7129 installed, we dynamically link to winsock on startup if present, and
7130 otherwise provide the minimum necessary functionality
7131 (eg. gethostname). */
7132
7133 /* function pointers for relevant socket functions */
7134 int (PASCAL *pfn_WSAStartup) (WORD wVersionRequired, LPWSADATA lpWSAData);
7135 void (PASCAL *pfn_WSASetLastError) (int iError);
7136 int (PASCAL *pfn_WSAGetLastError) (void);
7137 int (PASCAL *pfn_WSAEventSelect) (SOCKET s, HANDLE hEventObject, long lNetworkEvents);
7138 int (PASCAL *pfn_WSAEnumNetworkEvents) (SOCKET s, HANDLE hEventObject,
7139 WSANETWORKEVENTS *NetworkEvents);
7140
7141 HANDLE (PASCAL *pfn_WSACreateEvent) (void);
7142 int (PASCAL *pfn_WSACloseEvent) (HANDLE hEvent);
7143 int (PASCAL *pfn_socket) (int af, int type, int protocol);
7144 int (PASCAL *pfn_bind) (SOCKET s, const struct sockaddr *addr, int namelen);
7145 int (PASCAL *pfn_connect) (SOCKET s, const struct sockaddr *addr, int namelen);
7146 int (PASCAL *pfn_ioctlsocket) (SOCKET s, long cmd, u_long *argp);
7147 int (PASCAL *pfn_recv) (SOCKET s, char * buf, int len, int flags);
7148 int (PASCAL *pfn_send) (SOCKET s, const char * buf, int len, int flags);
7149 int (PASCAL *pfn_closesocket) (SOCKET s);
7150 int (PASCAL *pfn_shutdown) (SOCKET s, int how);
7151 int (PASCAL *pfn_WSACleanup) (void);
7152
7153 u_short (PASCAL *pfn_htons) (u_short hostshort);
7154 u_short (PASCAL *pfn_ntohs) (u_short netshort);
7155 unsigned long (PASCAL *pfn_inet_addr) (const char * cp);
7156 int (PASCAL *pfn_gethostname) (char * name, int namelen);
7157 struct hostent * (PASCAL *pfn_gethostbyname) (const char * name);
7158 struct servent * (PASCAL *pfn_getservbyname) (const char * name, const char * proto);
7159 int (PASCAL *pfn_getpeername) (SOCKET s, struct sockaddr *addr, int * namelen);
7160 int (PASCAL *pfn_setsockopt) (SOCKET s, int level, int optname,
7161 const char * optval, int optlen);
7162 int (PASCAL *pfn_listen) (SOCKET s, int backlog);
7163 int (PASCAL *pfn_getsockname) (SOCKET s, struct sockaddr * name,
7164 int * namelen);
7165 SOCKET (PASCAL *pfn_accept) (SOCKET s, struct sockaddr * addr, int * addrlen);
7166 int (PASCAL *pfn_recvfrom) (SOCKET s, char * buf, int len, int flags,
7167 struct sockaddr * from, int * fromlen);
7168 int (PASCAL *pfn_sendto) (SOCKET s, const char * buf, int len, int flags,
7169 const struct sockaddr * to, int tolen);
7170
7171 /* SetHandleInformation is only needed to make sockets non-inheritable. */
7172 BOOL (WINAPI *pfn_SetHandleInformation) (HANDLE object, DWORD mask, DWORD flags);
7173 #ifndef HANDLE_FLAG_INHERIT
7174 #define HANDLE_FLAG_INHERIT 1
7175 #endif
7176
7177 HANDLE winsock_lib;
7178 static int winsock_inuse;
7179
7180 BOOL
7181 term_winsock (void)
7182 {
7183 if (winsock_lib != NULL && winsock_inuse == 0)
7184 {
7185 release_listen_threads ();
7186 /* Not sure what would cause WSAENETDOWN, or even if it can happen
7187 after WSAStartup returns successfully, but it seems reasonable
7188 to allow unloading winsock anyway in that case. */
7189 if (pfn_WSACleanup () == 0 ||
7190 pfn_WSAGetLastError () == WSAENETDOWN)
7191 {
7192 if (FreeLibrary (winsock_lib))
7193 winsock_lib = NULL;
7194 return TRUE;
7195 }
7196 }
7197 return FALSE;
7198 }
7199
7200 BOOL
7201 init_winsock (int load_now)
7202 {
7203 WSADATA winsockData;
7204
7205 if (winsock_lib != NULL)
7206 return TRUE;
7207
7208 pfn_SetHandleInformation
7209 = (void *) GetProcAddress (GetModuleHandle ("kernel32.dll"),
7210 "SetHandleInformation");
7211
7212 winsock_lib = LoadLibrary ("Ws2_32.dll");
7213
7214 if (winsock_lib != NULL)
7215 {
7216 /* dynamically link to socket functions */
7217
7218 #define LOAD_PROC(fn) \
7219 if ((pfn_##fn = (void *) GetProcAddress (winsock_lib, #fn)) == NULL) \
7220 goto fail;
7221
7222 LOAD_PROC (WSAStartup);
7223 LOAD_PROC (WSASetLastError);
7224 LOAD_PROC (WSAGetLastError);
7225 LOAD_PROC (WSAEventSelect);
7226 LOAD_PROC (WSAEnumNetworkEvents);
7227 LOAD_PROC (WSACreateEvent);
7228 LOAD_PROC (WSACloseEvent);
7229 LOAD_PROC (socket);
7230 LOAD_PROC (bind);
7231 LOAD_PROC (connect);
7232 LOAD_PROC (ioctlsocket);
7233 LOAD_PROC (recv);
7234 LOAD_PROC (send);
7235 LOAD_PROC (closesocket);
7236 LOAD_PROC (shutdown);
7237 LOAD_PROC (htons);
7238 LOAD_PROC (ntohs);
7239 LOAD_PROC (inet_addr);
7240 LOAD_PROC (gethostname);
7241 LOAD_PROC (gethostbyname);
7242 LOAD_PROC (getservbyname);
7243 LOAD_PROC (getpeername);
7244 LOAD_PROC (WSACleanup);
7245 LOAD_PROC (setsockopt);
7246 LOAD_PROC (listen);
7247 LOAD_PROC (getsockname);
7248 LOAD_PROC (accept);
7249 LOAD_PROC (recvfrom);
7250 LOAD_PROC (sendto);
7251 #undef LOAD_PROC
7252
7253 /* specify version 1.1 of winsock */
7254 if (pfn_WSAStartup (0x101, &winsockData) == 0)
7255 {
7256 if (winsockData.wVersion != 0x101)
7257 goto fail;
7258
7259 if (!load_now)
7260 {
7261 /* Report that winsock exists and is usable, but leave
7262 socket functions disabled. I am assuming that calling
7263 WSAStartup does not require any network interaction,
7264 and in particular does not cause or require a dial-up
7265 connection to be established. */
7266
7267 pfn_WSACleanup ();
7268 FreeLibrary (winsock_lib);
7269 winsock_lib = NULL;
7270 }
7271 winsock_inuse = 0;
7272 return TRUE;
7273 }
7274
7275 fail:
7276 FreeLibrary (winsock_lib);
7277 winsock_lib = NULL;
7278 }
7279
7280 return FALSE;
7281 }
7282
7283
7284 int h_errno = 0;
7285
7286 /* Function to map winsock error codes to errno codes for those errno
7287 code defined in errno.h (errno values not defined by errno.h are
7288 already in nt/inc/sys/socket.h). */
7289 static void
7290 set_errno (void)
7291 {
7292 int wsa_err;
7293
7294 h_errno = 0;
7295 if (winsock_lib == NULL)
7296 wsa_err = EINVAL;
7297 else
7298 wsa_err = pfn_WSAGetLastError ();
7299
7300 switch (wsa_err)
7301 {
7302 case WSAEACCES: errno = EACCES; break;
7303 case WSAEBADF: errno = EBADF; break;
7304 case WSAEFAULT: errno = EFAULT; break;
7305 case WSAEINTR: errno = EINTR; break;
7306 case WSAEINVAL: errno = EINVAL; break;
7307 case WSAEMFILE: errno = EMFILE; break;
7308 case WSAENAMETOOLONG: errno = ENAMETOOLONG; break;
7309 case WSAENOTEMPTY: errno = ENOTEMPTY; break;
7310 case WSAEWOULDBLOCK: errno = EWOULDBLOCK; break;
7311 case WSAENOTCONN: errno = ENOTCONN; break;
7312 default: errno = wsa_err; break;
7313 }
7314 }
7315
7316 static void
7317 check_errno (void)
7318 {
7319 h_errno = 0;
7320 if (winsock_lib != NULL)
7321 pfn_WSASetLastError (0);
7322 }
7323
7324 /* Extend strerror to handle the winsock-specific error codes. */
7325 struct {
7326 int errnum;
7327 char * msg;
7328 } _wsa_errlist[] = {
7329 {WSAEINTR , "Interrupted function call"},
7330 {WSAEBADF , "Bad file descriptor"},
7331 {WSAEACCES , "Permission denied"},
7332 {WSAEFAULT , "Bad address"},
7333 {WSAEINVAL , "Invalid argument"},
7334 {WSAEMFILE , "Too many open files"},
7335
7336 {WSAEWOULDBLOCK , "Resource temporarily unavailable"},
7337 {WSAEINPROGRESS , "Operation now in progress"},
7338 {WSAEALREADY , "Operation already in progress"},
7339 {WSAENOTSOCK , "Socket operation on non-socket"},
7340 {WSAEDESTADDRREQ , "Destination address required"},
7341 {WSAEMSGSIZE , "Message too long"},
7342 {WSAEPROTOTYPE , "Protocol wrong type for socket"},
7343 {WSAENOPROTOOPT , "Bad protocol option"},
7344 {WSAEPROTONOSUPPORT , "Protocol not supported"},
7345 {WSAESOCKTNOSUPPORT , "Socket type not supported"},
7346 {WSAEOPNOTSUPP , "Operation not supported"},
7347 {WSAEPFNOSUPPORT , "Protocol family not supported"},
7348 {WSAEAFNOSUPPORT , "Address family not supported by protocol family"},
7349 {WSAEADDRINUSE , "Address already in use"},
7350 {WSAEADDRNOTAVAIL , "Cannot assign requested address"},
7351 {WSAENETDOWN , "Network is down"},
7352 {WSAENETUNREACH , "Network is unreachable"},
7353 {WSAENETRESET , "Network dropped connection on reset"},
7354 {WSAECONNABORTED , "Software caused connection abort"},
7355 {WSAECONNRESET , "Connection reset by peer"},
7356 {WSAENOBUFS , "No buffer space available"},
7357 {WSAEISCONN , "Socket is already connected"},
7358 {WSAENOTCONN , "Socket is not connected"},
7359 {WSAESHUTDOWN , "Cannot send after socket shutdown"},
7360 {WSAETOOMANYREFS , "Too many references"}, /* not sure */
7361 {WSAETIMEDOUT , "Connection timed out"},
7362 {WSAECONNREFUSED , "Connection refused"},
7363 {WSAELOOP , "Network loop"}, /* not sure */
7364 {WSAENAMETOOLONG , "Name is too long"},
7365 {WSAEHOSTDOWN , "Host is down"},
7366 {WSAEHOSTUNREACH , "No route to host"},
7367 {WSAENOTEMPTY , "Buffer not empty"}, /* not sure */
7368 {WSAEPROCLIM , "Too many processes"},
7369 {WSAEUSERS , "Too many users"}, /* not sure */
7370 {WSAEDQUOT , "Double quote in host name"}, /* really not sure */
7371 {WSAESTALE , "Data is stale"}, /* not sure */
7372 {WSAEREMOTE , "Remote error"}, /* not sure */
7373
7374 {WSASYSNOTREADY , "Network subsystem is unavailable"},
7375 {WSAVERNOTSUPPORTED , "WINSOCK.DLL version out of range"},
7376 {WSANOTINITIALISED , "Winsock not initialized successfully"},
7377 {WSAEDISCON , "Graceful shutdown in progress"},
7378 #ifdef WSAENOMORE
7379 {WSAENOMORE , "No more operations allowed"}, /* not sure */
7380 {WSAECANCELLED , "Operation cancelled"}, /* not sure */
7381 {WSAEINVALIDPROCTABLE , "Invalid procedure table from service provider"},
7382 {WSAEINVALIDPROVIDER , "Invalid service provider version number"},
7383 {WSAEPROVIDERFAILEDINIT , "Unable to initialize a service provider"},
7384 {WSASYSCALLFAILURE , "System call failure"},
7385 {WSASERVICE_NOT_FOUND , "Service not found"}, /* not sure */
7386 {WSATYPE_NOT_FOUND , "Class type not found"},
7387 {WSA_E_NO_MORE , "No more resources available"}, /* really not sure */
7388 {WSA_E_CANCELLED , "Operation already cancelled"}, /* really not sure */
7389 {WSAEREFUSED , "Operation refused"}, /* not sure */
7390 #endif
7391
7392 {WSAHOST_NOT_FOUND , "Host not found"},
7393 {WSATRY_AGAIN , "Authoritative host not found during name lookup"},
7394 {WSANO_RECOVERY , "Non-recoverable error during name lookup"},
7395 {WSANO_DATA , "Valid name, no data record of requested type"},
7396
7397 {-1, NULL}
7398 };
7399
7400 char *
7401 sys_strerror (int error_no)
7402 {
7403 int i;
7404 static char unknown_msg[40];
7405
7406 if (error_no >= 0 && error_no < sys_nerr)
7407 return sys_errlist[error_no];
7408
7409 for (i = 0; _wsa_errlist[i].errnum >= 0; i++)
7410 if (_wsa_errlist[i].errnum == error_no)
7411 return _wsa_errlist[i].msg;
7412
7413 sprintf (unknown_msg, "Unidentified error: %d", error_no);
7414 return unknown_msg;
7415 }
7416
7417 /* [andrewi 3-May-96] I've had conflicting results using both methods,
7418 but I believe the method of keeping the socket handle separate (and
7419 insuring it is not inheritable) is the correct one. */
7420
7421 #define SOCK_HANDLE(fd) ((SOCKET) fd_info[fd].hnd)
7422
7423 static int socket_to_fd (SOCKET s);
7424
7425 int
7426 sys_socket (int af, int type, int protocol)
7427 {
7428 SOCKET s;
7429
7430 if (winsock_lib == NULL)
7431 {
7432 errno = ENETDOWN;
7433 return INVALID_SOCKET;
7434 }
7435
7436 check_errno ();
7437
7438 /* call the real socket function */
7439 s = pfn_socket (af, type, protocol);
7440
7441 if (s != INVALID_SOCKET)
7442 return socket_to_fd (s);
7443
7444 set_errno ();
7445 return -1;
7446 }
7447
7448 /* Convert a SOCKET to a file descriptor. */
7449 static int
7450 socket_to_fd (SOCKET s)
7451 {
7452 int fd;
7453 child_process * cp;
7454
7455 /* Although under NT 3.5 _open_osfhandle will accept a socket
7456 handle, if opened with SO_OPENTYPE == SO_SYNCHRONOUS_NONALERT,
7457 that does not work under NT 3.1. However, we can get the same
7458 effect by using a backdoor function to replace an existing
7459 descriptor handle with the one we want. */
7460
7461 /* allocate a file descriptor (with appropriate flags) */
7462 fd = _open ("NUL:", _O_RDWR);
7463 if (fd >= 0)
7464 {
7465 /* Make a non-inheritable copy of the socket handle. Note
7466 that it is possible that sockets aren't actually kernel
7467 handles, which appears to be the case on Windows 9x when
7468 the MS Proxy winsock client is installed. */
7469 {
7470 /* Apparently there is a bug in NT 3.51 with some service
7471 packs, which prevents using DuplicateHandle to make a
7472 socket handle non-inheritable (causes WSACleanup to
7473 hang). The work-around is to use SetHandleInformation
7474 instead if it is available and implemented. */
7475 if (pfn_SetHandleInformation)
7476 {
7477 pfn_SetHandleInformation ((HANDLE) s, HANDLE_FLAG_INHERIT, 0);
7478 }
7479 else
7480 {
7481 HANDLE parent = GetCurrentProcess ();
7482 HANDLE new_s = INVALID_HANDLE_VALUE;
7483
7484 if (DuplicateHandle (parent,
7485 (HANDLE) s,
7486 parent,
7487 &new_s,
7488 0,
7489 FALSE,
7490 DUPLICATE_SAME_ACCESS))
7491 {
7492 /* It is possible that DuplicateHandle succeeds even
7493 though the socket wasn't really a kernel handle,
7494 because a real handle has the same value. So
7495 test whether the new handle really is a socket. */
7496 long nonblocking = 0;
7497 if (pfn_ioctlsocket ((SOCKET) new_s, FIONBIO, &nonblocking) == 0)
7498 {
7499 pfn_closesocket (s);
7500 s = (SOCKET) new_s;
7501 }
7502 else
7503 {
7504 CloseHandle (new_s);
7505 }
7506 }
7507 }
7508 }
7509 eassert (fd < MAXDESC);
7510 fd_info[fd].hnd = (HANDLE) s;
7511
7512 /* set our own internal flags */
7513 fd_info[fd].flags = FILE_SOCKET | FILE_BINARY | FILE_READ | FILE_WRITE;
7514
7515 cp = new_child ();
7516 if (cp)
7517 {
7518 cp->fd = fd;
7519 cp->status = STATUS_READ_ACKNOWLEDGED;
7520
7521 /* attach child_process to fd_info */
7522 if (fd_info[ fd ].cp != NULL)
7523 {
7524 DebPrint (("sys_socket: fd_info[%d] apparently in use!\n", fd));
7525 emacs_abort ();
7526 }
7527
7528 fd_info[ fd ].cp = cp;
7529
7530 /* success! */
7531 winsock_inuse++; /* count open sockets */
7532 return fd;
7533 }
7534
7535 /* clean up */
7536 _close (fd);
7537 }
7538 else
7539 pfn_closesocket (s);
7540 errno = EMFILE;
7541 return -1;
7542 }
7543
7544 int
7545 sys_bind (int s, const struct sockaddr * addr, int namelen)
7546 {
7547 if (winsock_lib == NULL)
7548 {
7549 errno = ENOTSOCK;
7550 return SOCKET_ERROR;
7551 }
7552
7553 check_errno ();
7554 if (fd_info[s].flags & FILE_SOCKET)
7555 {
7556 int rc = pfn_bind (SOCK_HANDLE (s), addr, namelen);
7557 if (rc == SOCKET_ERROR)
7558 set_errno ();
7559 return rc;
7560 }
7561 errno = ENOTSOCK;
7562 return SOCKET_ERROR;
7563 }
7564
7565 int
7566 sys_connect (int s, const struct sockaddr * name, int namelen)
7567 {
7568 if (winsock_lib == NULL)
7569 {
7570 errno = ENOTSOCK;
7571 return SOCKET_ERROR;
7572 }
7573
7574 check_errno ();
7575 if (fd_info[s].flags & FILE_SOCKET)
7576 {
7577 int rc = pfn_connect (SOCK_HANDLE (s), name, namelen);
7578 if (rc == SOCKET_ERROR)
7579 {
7580 set_errno ();
7581 /* If this is a non-blocking 'connect', set the bit in flags
7582 that will tell reader_thread to wait for connection
7583 before trying to read. */
7584 if (errno == EWOULDBLOCK && (fd_info[s].flags & FILE_NDELAY) != 0)
7585 {
7586 errno = EINPROGRESS; /* that's what process.c expects */
7587 fd_info[s].flags |= FILE_CONNECT;
7588 }
7589 }
7590 return rc;
7591 }
7592 errno = ENOTSOCK;
7593 return SOCKET_ERROR;
7594 }
7595
7596 u_short
7597 sys_htons (u_short hostshort)
7598 {
7599 return (winsock_lib != NULL) ?
7600 pfn_htons (hostshort) : hostshort;
7601 }
7602
7603 u_short
7604 sys_ntohs (u_short netshort)
7605 {
7606 return (winsock_lib != NULL) ?
7607 pfn_ntohs (netshort) : netshort;
7608 }
7609
7610 unsigned long
7611 sys_inet_addr (const char * cp)
7612 {
7613 return (winsock_lib != NULL) ?
7614 pfn_inet_addr (cp) : INADDR_NONE;
7615 }
7616
7617 int
7618 sys_gethostname (char * name, int namelen)
7619 {
7620 if (winsock_lib != NULL)
7621 {
7622 int retval;
7623
7624 check_errno ();
7625 retval = pfn_gethostname (name, namelen);
7626 if (retval == SOCKET_ERROR)
7627 set_errno ();
7628 return retval;
7629 }
7630
7631 if (namelen > MAX_COMPUTERNAME_LENGTH)
7632 return !GetComputerName (name, (DWORD *)&namelen);
7633
7634 errno = EFAULT;
7635 return SOCKET_ERROR;
7636 }
7637
7638 struct hostent *
7639 sys_gethostbyname (const char * name)
7640 {
7641 struct hostent * host;
7642 int h_err = h_errno;
7643
7644 if (winsock_lib == NULL)
7645 {
7646 h_errno = NO_RECOVERY;
7647 errno = ENETDOWN;
7648 return NULL;
7649 }
7650
7651 check_errno ();
7652 host = pfn_gethostbyname (name);
7653 if (!host)
7654 {
7655 set_errno ();
7656 h_errno = errno;
7657 }
7658 else
7659 h_errno = h_err;
7660 return host;
7661 }
7662
7663 struct servent *
7664 sys_getservbyname (const char * name, const char * proto)
7665 {
7666 struct servent * serv;
7667
7668 if (winsock_lib == NULL)
7669 {
7670 errno = ENETDOWN;
7671 return NULL;
7672 }
7673
7674 check_errno ();
7675 serv = pfn_getservbyname (name, proto);
7676 if (!serv)
7677 set_errno ();
7678 return serv;
7679 }
7680
7681 int
7682 sys_getpeername (int s, struct sockaddr *addr, int * namelen)
7683 {
7684 if (winsock_lib == NULL)
7685 {
7686 errno = ENETDOWN;
7687 return SOCKET_ERROR;
7688 }
7689
7690 check_errno ();
7691 if (fd_info[s].flags & FILE_SOCKET)
7692 {
7693 int rc = pfn_getpeername (SOCK_HANDLE (s), addr, namelen);
7694 if (rc == SOCKET_ERROR)
7695 set_errno ();
7696 return rc;
7697 }
7698 errno = ENOTSOCK;
7699 return SOCKET_ERROR;
7700 }
7701
7702 int
7703 sys_shutdown (int s, int how)
7704 {
7705 if (winsock_lib == NULL)
7706 {
7707 errno = ENETDOWN;
7708 return SOCKET_ERROR;
7709 }
7710
7711 check_errno ();
7712 if (fd_info[s].flags & FILE_SOCKET)
7713 {
7714 int rc = pfn_shutdown (SOCK_HANDLE (s), how);
7715 if (rc == SOCKET_ERROR)
7716 set_errno ();
7717 return rc;
7718 }
7719 errno = ENOTSOCK;
7720 return SOCKET_ERROR;
7721 }
7722
7723 int
7724 sys_setsockopt (int s, int level, int optname, const void * optval, int optlen)
7725 {
7726 if (winsock_lib == NULL)
7727 {
7728 errno = ENETDOWN;
7729 return SOCKET_ERROR;
7730 }
7731
7732 check_errno ();
7733 if (fd_info[s].flags & FILE_SOCKET)
7734 {
7735 int rc = pfn_setsockopt (SOCK_HANDLE (s), level, optname,
7736 (const char *)optval, optlen);
7737 if (rc == SOCKET_ERROR)
7738 set_errno ();
7739 return rc;
7740 }
7741 errno = ENOTSOCK;
7742 return SOCKET_ERROR;
7743 }
7744
7745 int
7746 sys_listen (int s, int backlog)
7747 {
7748 if (winsock_lib == NULL)
7749 {
7750 errno = ENETDOWN;
7751 return SOCKET_ERROR;
7752 }
7753
7754 check_errno ();
7755 if (fd_info[s].flags & FILE_SOCKET)
7756 {
7757 int rc = pfn_listen (SOCK_HANDLE (s), backlog);
7758 if (rc == SOCKET_ERROR)
7759 set_errno ();
7760 else
7761 fd_info[s].flags |= FILE_LISTEN;
7762 return rc;
7763 }
7764 errno = ENOTSOCK;
7765 return SOCKET_ERROR;
7766 }
7767
7768 int
7769 sys_getsockname (int s, struct sockaddr * name, int * namelen)
7770 {
7771 if (winsock_lib == NULL)
7772 {
7773 errno = ENETDOWN;
7774 return SOCKET_ERROR;
7775 }
7776
7777 check_errno ();
7778 if (fd_info[s].flags & FILE_SOCKET)
7779 {
7780 int rc = pfn_getsockname (SOCK_HANDLE (s), name, namelen);
7781 if (rc == SOCKET_ERROR)
7782 set_errno ();
7783 return rc;
7784 }
7785 errno = ENOTSOCK;
7786 return SOCKET_ERROR;
7787 }
7788
7789 int
7790 sys_accept (int s, struct sockaddr * addr, int * addrlen)
7791 {
7792 if (winsock_lib == NULL)
7793 {
7794 errno = ENETDOWN;
7795 return -1;
7796 }
7797
7798 check_errno ();
7799 if (fd_info[s].flags & FILE_LISTEN)
7800 {
7801 SOCKET t = pfn_accept (SOCK_HANDLE (s), addr, addrlen);
7802 int fd = -1;
7803 if (t == INVALID_SOCKET)
7804 set_errno ();
7805 else
7806 fd = socket_to_fd (t);
7807
7808 if (fd >= 0)
7809 {
7810 fd_info[s].cp->status = STATUS_READ_ACKNOWLEDGED;
7811 ResetEvent (fd_info[s].cp->char_avail);
7812 }
7813 return fd;
7814 }
7815 errno = ENOTSOCK;
7816 return -1;
7817 }
7818
7819 int
7820 sys_recvfrom (int s, char * buf, int len, int flags,
7821 struct sockaddr * from, int * fromlen)
7822 {
7823 if (winsock_lib == NULL)
7824 {
7825 errno = ENETDOWN;
7826 return SOCKET_ERROR;
7827 }
7828
7829 check_errno ();
7830 if (fd_info[s].flags & FILE_SOCKET)
7831 {
7832 int rc = pfn_recvfrom (SOCK_HANDLE (s), buf, len, flags, from, fromlen);
7833 if (rc == SOCKET_ERROR)
7834 set_errno ();
7835 return rc;
7836 }
7837 errno = ENOTSOCK;
7838 return SOCKET_ERROR;
7839 }
7840
7841 int
7842 sys_sendto (int s, const char * buf, int len, int flags,
7843 const struct sockaddr * to, int tolen)
7844 {
7845 if (winsock_lib == NULL)
7846 {
7847 errno = ENETDOWN;
7848 return SOCKET_ERROR;
7849 }
7850
7851 check_errno ();
7852 if (fd_info[s].flags & FILE_SOCKET)
7853 {
7854 int rc = pfn_sendto (SOCK_HANDLE (s), buf, len, flags, to, tolen);
7855 if (rc == SOCKET_ERROR)
7856 set_errno ();
7857 return rc;
7858 }
7859 errno = ENOTSOCK;
7860 return SOCKET_ERROR;
7861 }
7862
7863 /* Windows does not have an fcntl function. Provide an implementation
7864 good enough for Emacs. */
7865 int
7866 fcntl (int s, int cmd, int options)
7867 {
7868 /* In the w32 Emacs port, fcntl (fd, F_DUPFD_CLOEXEC, fd1) is always
7869 invoked in a context where fd1 is closed and all descriptors less
7870 than fd1 are open, so sys_dup is an adequate implementation. */
7871 if (cmd == F_DUPFD_CLOEXEC)
7872 return sys_dup (s);
7873
7874 check_errno ();
7875 if (fd_info[s].flags & FILE_SOCKET)
7876 {
7877 if (winsock_lib == NULL)
7878 {
7879 errno = ENETDOWN;
7880 return -1;
7881 }
7882
7883 if (cmd == F_SETFL && options == O_NONBLOCK)
7884 {
7885 unsigned long nblock = 1;
7886 int rc = pfn_ioctlsocket (SOCK_HANDLE (s), FIONBIO, &nblock);
7887 if (rc == SOCKET_ERROR)
7888 set_errno ();
7889 /* Keep track of the fact that we set this to non-blocking. */
7890 fd_info[s].flags |= FILE_NDELAY;
7891 return rc;
7892 }
7893 else
7894 {
7895 errno = EINVAL;
7896 return SOCKET_ERROR;
7897 }
7898 }
7899 else if ((fd_info[s].flags & (FILE_PIPE | FILE_WRITE))
7900 == (FILE_PIPE | FILE_WRITE))
7901 {
7902 /* Force our writes to pipes be non-blocking. */
7903 if (cmd == F_SETFL && options == O_NONBLOCK)
7904 {
7905 HANDLE h = (HANDLE)_get_osfhandle (s);
7906 DWORD pipe_mode = PIPE_NOWAIT;
7907
7908 if (!SetNamedPipeHandleState (h, &pipe_mode, NULL, NULL))
7909 {
7910 DebPrint (("SetNamedPipeHandleState: %lu\n", GetLastError ()));
7911 return SOCKET_ERROR;
7912 }
7913 fd_info[s].flags |= FILE_NDELAY;
7914 return 0;
7915 }
7916 else
7917 {
7918 errno = EINVAL;
7919 return SOCKET_ERROR;
7920 }
7921 }
7922 errno = ENOTSOCK;
7923 return SOCKET_ERROR;
7924 }
7925
7926
7927 /* Shadow main io functions: we need to handle pipes and sockets more
7928 intelligently. */
7929
7930 int
7931 sys_close (int fd)
7932 {
7933 int rc;
7934
7935 if (fd < 0)
7936 {
7937 errno = EBADF;
7938 return -1;
7939 }
7940
7941 if (fd < MAXDESC && fd_info[fd].cp)
7942 {
7943 child_process * cp = fd_info[fd].cp;
7944
7945 fd_info[fd].cp = NULL;
7946
7947 if (CHILD_ACTIVE (cp))
7948 {
7949 /* if last descriptor to active child_process then cleanup */
7950 int i;
7951 for (i = 0; i < MAXDESC; i++)
7952 {
7953 if (i == fd)
7954 continue;
7955 if (fd_info[i].cp == cp)
7956 break;
7957 }
7958 if (i == MAXDESC)
7959 {
7960 if (fd_info[fd].flags & FILE_SOCKET)
7961 {
7962 if (winsock_lib == NULL) emacs_abort ();
7963
7964 pfn_shutdown (SOCK_HANDLE (fd), 2);
7965 rc = pfn_closesocket (SOCK_HANDLE (fd));
7966
7967 winsock_inuse--; /* count open sockets */
7968 }
7969 /* If the process handle is NULL, it's either a socket
7970 or serial connection, or a subprocess that was
7971 already reaped by reap_subprocess, but whose
7972 resources were not yet freed, because its output was
7973 not fully read yet by the time it was reaped. (This
7974 usually happens with async subprocesses whose output
7975 is being read by Emacs.) Otherwise, this process was
7976 not reaped yet, so we set its FD to a negative value
7977 to make sure sys_select will eventually get to
7978 calling the SIGCHLD handler for it, which will then
7979 invoke waitpid and reap_subprocess. */
7980 if (cp->procinfo.hProcess == NULL)
7981 delete_child (cp);
7982 else
7983 cp->fd = -1;
7984 }
7985 }
7986 }
7987
7988 if (fd >= 0 && fd < MAXDESC)
7989 fd_info[fd].flags = 0;
7990
7991 /* Note that sockets do not need special treatment here (at least on
7992 NT and Windows 95 using the standard tcp/ip stacks) - it appears that
7993 closesocket is equivalent to CloseHandle, which is to be expected
7994 because socket handles are fully fledged kernel handles. */
7995 rc = _close (fd);
7996
7997 return rc;
7998 }
7999
8000 int
8001 sys_dup (int fd)
8002 {
8003 int new_fd;
8004
8005 new_fd = _dup (fd);
8006 if (new_fd >= 0 && new_fd < MAXDESC)
8007 {
8008 /* duplicate our internal info as well */
8009 fd_info[new_fd] = fd_info[fd];
8010 }
8011 return new_fd;
8012 }
8013
8014 int
8015 sys_dup2 (int src, int dst)
8016 {
8017 int rc;
8018
8019 if (dst < 0 || dst >= MAXDESC)
8020 {
8021 errno = EBADF;
8022 return -1;
8023 }
8024
8025 /* make sure we close the destination first if it's a pipe or socket */
8026 if (src != dst && fd_info[dst].flags != 0)
8027 sys_close (dst);
8028
8029 rc = _dup2 (src, dst);
8030 if (rc == 0)
8031 {
8032 /* duplicate our internal info as well */
8033 fd_info[dst] = fd_info[src];
8034 }
8035 return rc;
8036 }
8037
8038 int
8039 pipe2 (int * phandles, int pipe2_flags)
8040 {
8041 int rc;
8042 unsigned flags;
8043
8044 eassert (pipe2_flags == (O_BINARY | O_CLOEXEC));
8045
8046 /* make pipe handles non-inheritable; when we spawn a child, we
8047 replace the relevant handle with an inheritable one. Also put
8048 pipes into binary mode; we will do text mode translation ourselves
8049 if required. */
8050 rc = _pipe (phandles, 0, _O_NOINHERIT | _O_BINARY);
8051
8052 if (rc == 0)
8053 {
8054 /* Protect against overflow, since Windows can open more handles than
8055 our fd_info array has room for. */
8056 if (phandles[0] >= MAXDESC || phandles[1] >= MAXDESC)
8057 {
8058 _close (phandles[0]);
8059 _close (phandles[1]);
8060 errno = EMFILE;
8061 rc = -1;
8062 }
8063 else
8064 {
8065 flags = FILE_PIPE | FILE_READ | FILE_BINARY;
8066 fd_info[phandles[0]].flags = flags;
8067
8068 flags = FILE_PIPE | FILE_WRITE | FILE_BINARY;
8069 fd_info[phandles[1]].flags = flags;
8070 }
8071 }
8072
8073 return rc;
8074 }
8075
8076 /* Function to do blocking read of one byte, needed to implement
8077 select. It is only allowed on communication ports, sockets, or
8078 pipes. */
8079 int
8080 _sys_read_ahead (int fd)
8081 {
8082 child_process * cp;
8083 int rc;
8084
8085 if (fd < 0 || fd >= MAXDESC)
8086 return STATUS_READ_ERROR;
8087
8088 cp = fd_info[fd].cp;
8089
8090 if (cp == NULL || cp->fd != fd || cp->status != STATUS_READ_READY)
8091 return STATUS_READ_ERROR;
8092
8093 if ((fd_info[fd].flags & (FILE_PIPE | FILE_SERIAL | FILE_SOCKET)) == 0
8094 || (fd_info[fd].flags & FILE_READ) == 0)
8095 {
8096 DebPrint (("_sys_read_ahead: internal error: fd %d is not a pipe, serial port, or socket!\n", fd));
8097 emacs_abort ();
8098 }
8099
8100 if ((fd_info[fd].flags & FILE_CONNECT) != 0)
8101 DebPrint (("_sys_read_ahead: read requested from fd %d, which waits for async connect!\n", fd));
8102 cp->status = STATUS_READ_IN_PROGRESS;
8103
8104 if (fd_info[fd].flags & FILE_PIPE)
8105 {
8106 rc = _read (fd, &cp->chr, sizeof (char));
8107
8108 /* Give subprocess time to buffer some more output for us before
8109 reporting that input is available; we need this because Windows 95
8110 connects DOS programs to pipes by making the pipe appear to be
8111 the normal console stdout - as a result most DOS programs will
8112 write to stdout without buffering, ie. one character at a
8113 time. Even some W32 programs do this - "dir" in a command
8114 shell on NT is very slow if we don't do this. */
8115 if (rc > 0)
8116 {
8117 int wait = w32_pipe_read_delay;
8118
8119 if (wait > 0)
8120 Sleep (wait);
8121 else if (wait < 0)
8122 while (++wait <= 0)
8123 /* Yield remainder of our time slice, effectively giving a
8124 temporary priority boost to the child process. */
8125 Sleep (0);
8126 }
8127 }
8128 else if (fd_info[fd].flags & FILE_SERIAL)
8129 {
8130 HANDLE hnd = fd_info[fd].hnd;
8131 OVERLAPPED *ovl = &fd_info[fd].cp->ovl_read;
8132 COMMTIMEOUTS ct;
8133
8134 /* Configure timeouts for blocking read. */
8135 if (!GetCommTimeouts (hnd, &ct))
8136 {
8137 cp->status = STATUS_READ_ERROR;
8138 return STATUS_READ_ERROR;
8139 }
8140 ct.ReadIntervalTimeout = 0;
8141 ct.ReadTotalTimeoutMultiplier = 0;
8142 ct.ReadTotalTimeoutConstant = 0;
8143 if (!SetCommTimeouts (hnd, &ct))
8144 {
8145 cp->status = STATUS_READ_ERROR;
8146 return STATUS_READ_ERROR;
8147 }
8148
8149 if (!ReadFile (hnd, &cp->chr, sizeof (char), (DWORD*) &rc, ovl))
8150 {
8151 if (GetLastError () != ERROR_IO_PENDING)
8152 {
8153 cp->status = STATUS_READ_ERROR;
8154 return STATUS_READ_ERROR;
8155 }
8156 if (!GetOverlappedResult (hnd, ovl, (DWORD*) &rc, TRUE))
8157 {
8158 cp->status = STATUS_READ_ERROR;
8159 return STATUS_READ_ERROR;
8160 }
8161 }
8162 }
8163 else if (fd_info[fd].flags & FILE_SOCKET)
8164 {
8165 unsigned long nblock = 0;
8166 /* We always want this to block, so temporarily disable NDELAY. */
8167 if (fd_info[fd].flags & FILE_NDELAY)
8168 pfn_ioctlsocket (SOCK_HANDLE (fd), FIONBIO, &nblock);
8169
8170 rc = pfn_recv (SOCK_HANDLE (fd), &cp->chr, sizeof (char), 0);
8171
8172 if (fd_info[fd].flags & FILE_NDELAY)
8173 {
8174 nblock = 1;
8175 pfn_ioctlsocket (SOCK_HANDLE (fd), FIONBIO, &nblock);
8176 }
8177 }
8178
8179 if (rc == sizeof (char))
8180 cp->status = STATUS_READ_SUCCEEDED;
8181 else
8182 cp->status = STATUS_READ_FAILED;
8183
8184 return cp->status;
8185 }
8186
8187 int
8188 _sys_wait_accept (int fd)
8189 {
8190 HANDLE hEv;
8191 child_process * cp;
8192 int rc;
8193
8194 if (fd < 0 || fd >= MAXDESC)
8195 return STATUS_READ_ERROR;
8196
8197 cp = fd_info[fd].cp;
8198
8199 if (cp == NULL || cp->fd != fd || cp->status != STATUS_READ_READY)
8200 return STATUS_READ_ERROR;
8201
8202 cp->status = STATUS_READ_FAILED;
8203
8204 hEv = pfn_WSACreateEvent ();
8205 rc = pfn_WSAEventSelect (SOCK_HANDLE (fd), hEv, FD_ACCEPT);
8206 if (rc != SOCKET_ERROR)
8207 {
8208 do {
8209 rc = WaitForSingleObject (hEv, 500);
8210 Sleep (5);
8211 } while (rc == WAIT_TIMEOUT
8212 && cp->status != STATUS_READ_ERROR
8213 && cp->char_avail);
8214 pfn_WSAEventSelect (SOCK_HANDLE (fd), NULL, 0);
8215 if (rc == WAIT_OBJECT_0)
8216 cp->status = STATUS_READ_SUCCEEDED;
8217 }
8218 pfn_WSACloseEvent (hEv);
8219
8220 return cp->status;
8221 }
8222
8223 int
8224 _sys_wait_connect (int fd)
8225 {
8226 HANDLE hEv;
8227 child_process * cp;
8228 int rc;
8229
8230 if (fd < 0 || fd >= MAXDESC)
8231 return STATUS_READ_ERROR;
8232
8233 cp = fd_info[fd].cp;
8234 if (cp == NULL || cp->fd != fd || cp->status != STATUS_READ_READY)
8235 return STATUS_READ_ERROR;
8236
8237 cp->status = STATUS_READ_FAILED;
8238
8239 hEv = pfn_WSACreateEvent ();
8240 rc = pfn_WSAEventSelect (SOCK_HANDLE (fd), hEv, FD_CONNECT);
8241 if (rc != SOCKET_ERROR)
8242 {
8243 do {
8244 rc = WaitForSingleObject (hEv, 500);
8245 Sleep (5);
8246 } while (rc == WAIT_TIMEOUT
8247 && cp->status != STATUS_READ_ERROR
8248 && cp->char_avail);
8249 if (rc == WAIT_OBJECT_0)
8250 {
8251 /* We've got an event, but it could be a successful
8252 connection, or it could be a failure. Find out
8253 which one is it. */
8254 WSANETWORKEVENTS events;
8255
8256 pfn_WSAEnumNetworkEvents (SOCK_HANDLE (fd), hEv, &events);
8257 if ((events.lNetworkEvents & FD_CONNECT) != 0
8258 && events.iErrorCode[FD_CONNECT_BIT])
8259 {
8260 cp->status = STATUS_CONNECT_FAILED;
8261 cp->errcode = events.iErrorCode[FD_CONNECT_BIT];
8262 }
8263 else
8264 {
8265 cp->status = STATUS_READ_SUCCEEDED;
8266 cp->errcode = 0;
8267 }
8268 }
8269 pfn_WSAEventSelect (SOCK_HANDLE (fd), NULL, 0);
8270 }
8271 else
8272 pfn_WSACloseEvent (hEv);
8273
8274 return cp->status;
8275 }
8276
8277 int
8278 sys_read (int fd, char * buffer, unsigned int count)
8279 {
8280 int nchars;
8281 int to_read;
8282 DWORD waiting;
8283 char * orig_buffer = buffer;
8284
8285 if (fd < 0)
8286 {
8287 errno = EBADF;
8288 return -1;
8289 }
8290
8291 if (fd < MAXDESC && fd_info[fd].flags & (FILE_PIPE | FILE_SOCKET | FILE_SERIAL))
8292 {
8293 child_process *cp = fd_info[fd].cp;
8294
8295 if ((fd_info[fd].flags & FILE_READ) == 0)
8296 {
8297 errno = EBADF;
8298 return -1;
8299 }
8300
8301 nchars = 0;
8302
8303 /* re-read CR carried over from last read */
8304 if (fd_info[fd].flags & FILE_LAST_CR)
8305 {
8306 if (fd_info[fd].flags & FILE_BINARY) emacs_abort ();
8307 *buffer++ = 0x0d;
8308 count--;
8309 nchars++;
8310 fd_info[fd].flags &= ~FILE_LAST_CR;
8311 }
8312
8313 /* presence of a child_process structure means we are operating in
8314 non-blocking mode - otherwise we just call _read directly.
8315 Note that the child_process structure might be missing because
8316 reap_subprocess has been called; in this case the pipe is
8317 already broken, so calling _read on it is okay. */
8318 if (cp)
8319 {
8320 int current_status = cp->status;
8321
8322 switch (current_status)
8323 {
8324 case STATUS_READ_FAILED:
8325 case STATUS_READ_ERROR:
8326 /* report normal EOF if nothing in buffer */
8327 if (nchars <= 0)
8328 fd_info[fd].flags |= FILE_AT_EOF;
8329 return nchars;
8330
8331 case STATUS_READ_READY:
8332 case STATUS_READ_IN_PROGRESS:
8333 DebPrint (("sys_read called when read is in progress\n"));
8334 errno = EWOULDBLOCK;
8335 return -1;
8336
8337 case STATUS_READ_SUCCEEDED:
8338 /* consume read-ahead char */
8339 *buffer++ = cp->chr;
8340 count--;
8341 nchars++;
8342 cp->status = STATUS_READ_ACKNOWLEDGED;
8343 ResetEvent (cp->char_avail);
8344
8345 case STATUS_READ_ACKNOWLEDGED:
8346 case STATUS_CONNECT_FAILED:
8347 break;
8348
8349 default:
8350 DebPrint (("sys_read: bad status %d\n", current_status));
8351 errno = EBADF;
8352 return -1;
8353 }
8354
8355 if (fd_info[fd].flags & FILE_PIPE)
8356 {
8357 PeekNamedPipe ((HANDLE) _get_osfhandle (fd), NULL, 0, NULL, &waiting, NULL);
8358 to_read = min (waiting, (DWORD) count);
8359
8360 if (to_read > 0)
8361 nchars += _read (fd, buffer, to_read);
8362 }
8363 else if (fd_info[fd].flags & FILE_SERIAL)
8364 {
8365 HANDLE hnd = fd_info[fd].hnd;
8366 OVERLAPPED *ovl = &fd_info[fd].cp->ovl_read;
8367 int rc = 0;
8368 COMMTIMEOUTS ct;
8369
8370 if (count > 0)
8371 {
8372 /* Configure timeouts for non-blocking read. */
8373 if (!GetCommTimeouts (hnd, &ct))
8374 {
8375 errno = EIO;
8376 return -1;
8377 }
8378 ct.ReadIntervalTimeout = MAXDWORD;
8379 ct.ReadTotalTimeoutMultiplier = 0;
8380 ct.ReadTotalTimeoutConstant = 0;
8381 if (!SetCommTimeouts (hnd, &ct))
8382 {
8383 errno = EIO;
8384 return -1;
8385 }
8386
8387 if (!ResetEvent (ovl->hEvent))
8388 {
8389 errno = EIO;
8390 return -1;
8391 }
8392 if (!ReadFile (hnd, buffer, count, (DWORD*) &rc, ovl))
8393 {
8394 if (GetLastError () != ERROR_IO_PENDING)
8395 {
8396 errno = EIO;
8397 return -1;
8398 }
8399 if (!GetOverlappedResult (hnd, ovl, (DWORD*) &rc, TRUE))
8400 {
8401 errno = EIO;
8402 return -1;
8403 }
8404 }
8405 nchars += rc;
8406 }
8407 }
8408 else /* FILE_SOCKET */
8409 {
8410 if (winsock_lib == NULL) emacs_abort ();
8411
8412 /* When a non-blocking 'connect' call fails,
8413 wait_reading_process_output detects this by calling
8414 'getpeername', and then attempts to obtain the connection
8415 error code by trying to read 1 byte from the socket. If
8416 we try to serve that read by calling 'recv' below, the
8417 error we get is a generic WSAENOTCONN, not the actual
8418 connection error. So instead, we use the actual error
8419 code stashed by '_sys_wait_connect' in cp->errcode.
8420 Alternatively, we could have used 'getsockopt', like on
8421 GNU/Linux, but: (a) I have no idea whether the winsock
8422 version could hang, as it does "on some systems" (see the
8423 comment in process.c); and (b) 'getsockopt' on Windows is
8424 documented to clear the socket error for the entire
8425 process, which I'm not sure is TRT; FIXME. */
8426 if (current_status == STATUS_CONNECT_FAILED
8427 && (fd_info[fd].flags & FILE_CONNECT) != 0
8428 && cp->errcode != 0)
8429 {
8430 pfn_WSASetLastError (cp->errcode);
8431 set_errno ();
8432 return -1;
8433 }
8434 /* Do the equivalent of a non-blocking read. */
8435 pfn_ioctlsocket (SOCK_HANDLE (fd), FIONREAD, &waiting);
8436 if (waiting == 0 && nchars == 0)
8437 {
8438 errno = EWOULDBLOCK;
8439 return -1;
8440 }
8441
8442 if (waiting)
8443 {
8444 /* always use binary mode for sockets */
8445 int res = pfn_recv (SOCK_HANDLE (fd), buffer, count, 0);
8446 if (res == SOCKET_ERROR)
8447 {
8448 set_errno ();
8449 DebPrint (("sys_read.recv failed with error %d on socket %ld\n",
8450 errno, SOCK_HANDLE (fd)));
8451 return -1;
8452 }
8453 nchars += res;
8454 }
8455 }
8456 }
8457 else
8458 {
8459 int nread = _read (fd, buffer, count);
8460 if (nread >= 0)
8461 nchars += nread;
8462 else if (nchars == 0)
8463 nchars = nread;
8464 }
8465
8466 if (nchars <= 0)
8467 fd_info[fd].flags |= FILE_AT_EOF;
8468 /* Perform text mode translation if required. */
8469 else if ((fd_info[fd].flags & FILE_BINARY) == 0)
8470 {
8471 nchars = crlf_to_lf (nchars, orig_buffer);
8472 /* If buffer contains only CR, return that. To be absolutely
8473 sure we should attempt to read the next char, but in
8474 practice a CR to be followed by LF would not appear by
8475 itself in the buffer. */
8476 if (nchars > 1 && orig_buffer[nchars - 1] == 0x0d)
8477 {
8478 fd_info[fd].flags |= FILE_LAST_CR;
8479 nchars--;
8480 }
8481 }
8482 }
8483 else
8484 nchars = _read (fd, buffer, count);
8485
8486 return nchars;
8487 }
8488
8489 /* From w32xfns.c */
8490 extern HANDLE interrupt_handle;
8491
8492 int
8493 sys_write (int fd, const void * buffer, unsigned int count)
8494 {
8495 int nchars;
8496 USE_SAFE_ALLOCA;
8497
8498 if (fd < 0)
8499 {
8500 errno = EBADF;
8501 return -1;
8502 }
8503
8504 if (fd < MAXDESC && fd_info[fd].flags & (FILE_PIPE | FILE_SOCKET | FILE_SERIAL))
8505 {
8506 if ((fd_info[fd].flags & FILE_WRITE) == 0)
8507 {
8508 errno = EBADF;
8509 return -1;
8510 }
8511
8512 /* Perform text mode translation if required. */
8513 if ((fd_info[fd].flags & FILE_BINARY) == 0)
8514 {
8515 char * tmpbuf;
8516 const unsigned char * src = buffer;
8517 unsigned char * dst;
8518 int nbytes = count;
8519
8520 SAFE_NALLOCA (tmpbuf, 2, count);
8521 dst = tmpbuf;
8522
8523 while (1)
8524 {
8525 unsigned char *next;
8526 /* Copy next line or remaining bytes. */
8527 next = _memccpy (dst, src, '\n', nbytes);
8528 if (next)
8529 {
8530 /* Copied one line ending with '\n'. */
8531 int copied = next - dst;
8532 nbytes -= copied;
8533 src += copied;
8534 /* Insert '\r' before '\n'. */
8535 next[-1] = '\r';
8536 next[0] = '\n';
8537 dst = next + 1;
8538 count++;
8539 }
8540 else
8541 /* Copied remaining partial line -> now finished. */
8542 break;
8543 }
8544 buffer = tmpbuf;
8545 }
8546 }
8547
8548 if (fd < MAXDESC && fd_info[fd].flags & FILE_SERIAL)
8549 {
8550 HANDLE hnd = (HANDLE) _get_osfhandle (fd);
8551 OVERLAPPED *ovl = &fd_info[fd].cp->ovl_write;
8552 HANDLE wait_hnd[2] = { interrupt_handle, ovl->hEvent };
8553 DWORD active = 0;
8554
8555 /* This is async (a.k.a. "overlapped") I/O, so the return value
8556 of FALSE from WriteFile means either an error or the output
8557 will be completed asynchronously (ERROR_IO_PENDING). */
8558 if (!WriteFile (hnd, buffer, count, (DWORD*) &nchars, ovl))
8559 {
8560 if (GetLastError () != ERROR_IO_PENDING)
8561 {
8562 errno = EIO;
8563 nchars = -1;
8564 }
8565 else
8566 {
8567 /* Wait for the write to complete, and watch C-g while
8568 at that. */
8569 if (detect_input_pending ())
8570 active = MsgWaitForMultipleObjects (2, wait_hnd, FALSE,
8571 INFINITE, QS_ALLINPUT);
8572 else
8573 active = WaitForMultipleObjects (2, wait_hnd, FALSE, INFINITE);
8574 switch (active)
8575 {
8576 case WAIT_OBJECT_0:
8577 /* User pressed C-g, cancel write, then leave.
8578 Don't bother cleaning up as we may only get stuck
8579 in buggy drivers. */
8580 PurgeComm (hnd, PURGE_TXABORT | PURGE_TXCLEAR);
8581 CancelIo (hnd);
8582 errno = EIO; /* Why not EINTR? */
8583 nchars = -1;
8584 break;
8585 case WAIT_OBJECT_0 + 1:
8586 if (!GetOverlappedResult (hnd, ovl, (DWORD*) &nchars, TRUE))
8587 {
8588 errno = EIO;
8589 nchars = -1;
8590 }
8591 break;
8592 }
8593 }
8594 }
8595 }
8596 else if (fd < MAXDESC && fd_info[fd].flags & FILE_SOCKET)
8597 {
8598 unsigned long nblock = 0;
8599 if (winsock_lib == NULL) emacs_abort ();
8600
8601 /* TODO: implement select() properly so non-blocking I/O works. */
8602 /* For now, make sure the write blocks. */
8603 if (fd_info[fd].flags & FILE_NDELAY)
8604 pfn_ioctlsocket (SOCK_HANDLE (fd), FIONBIO, &nblock);
8605
8606 nchars = pfn_send (SOCK_HANDLE (fd), buffer, count, 0);
8607
8608 /* Set the socket back to non-blocking if it was before,
8609 for other operations that support it. */
8610 if (fd_info[fd].flags & FILE_NDELAY)
8611 {
8612 nblock = 1;
8613 pfn_ioctlsocket (SOCK_HANDLE (fd), FIONBIO, &nblock);
8614 }
8615
8616 if (nchars == SOCKET_ERROR)
8617 {
8618 DebPrint (("sys_write.send failed with error %d on socket %ld\n",
8619 pfn_WSAGetLastError (), SOCK_HANDLE (fd)));
8620 set_errno ();
8621 }
8622 }
8623 else
8624 {
8625 /* Some networked filesystems don't like too large writes, so
8626 break them into smaller chunks. See the Comments section of
8627 the MSDN documentation of WriteFile for details behind the
8628 choice of the value of CHUNK below. See also the thread
8629 http://thread.gmane.org/gmane.comp.version-control.git/145294
8630 in the git mailing list. */
8631 const unsigned char *p = buffer;
8632 const unsigned chunk = 30 * 1024 * 1024;
8633
8634 nchars = 0;
8635 while (count > 0)
8636 {
8637 unsigned this_chunk = count < chunk ? count : chunk;
8638 int n = _write (fd, p, this_chunk);
8639
8640 nchars += n;
8641 if (n < 0)
8642 {
8643 /* When there's no buffer space in a pipe that is in the
8644 non-blocking mode, _write returns ENOSPC. We return
8645 EAGAIN instead, which should trigger the logic in
8646 send_process that enters waiting loop and calls
8647 wait_reading_process_output to allow process input to
8648 be accepted during the wait. Those calls to
8649 wait_reading_process_output allow sys_select to
8650 notice when process input becomes available, thus
8651 avoiding deadlock whereby each side of the pipe is
8652 blocked on write, waiting for the other party to read
8653 its end of the pipe. */
8654 if (errno == ENOSPC
8655 && fd < MAXDESC
8656 && ((fd_info[fd].flags & (FILE_PIPE | FILE_NDELAY))
8657 == (FILE_PIPE | FILE_NDELAY)))
8658 errno = EAGAIN;
8659 nchars = n;
8660 break;
8661 }
8662 else if (n < this_chunk)
8663 break;
8664 count -= n;
8665 p += n;
8666 }
8667 }
8668
8669 SAFE_FREE ();
8670 return nchars;
8671 }
8672
8673 \f
8674 /* Emulation of SIOCGIFCONF and getifaddrs, see process.c. */
8675
8676 extern Lisp_Object conv_sockaddr_to_lisp (struct sockaddr *, int);
8677
8678 /* Return information about network interface IFNAME, or about all
8679 interfaces (if IFNAME is nil). */
8680 static Lisp_Object
8681 network_interface_get_info (Lisp_Object ifname)
8682 {
8683 ULONG ainfo_len = sizeof (IP_ADAPTER_INFO);
8684 IP_ADAPTER_INFO *adapter, *ainfo = xmalloc (ainfo_len);
8685 DWORD retval = get_adapters_info (ainfo, &ainfo_len);
8686 Lisp_Object res = Qnil;
8687
8688 if (retval == ERROR_BUFFER_OVERFLOW)
8689 {
8690 ainfo = xrealloc (ainfo, ainfo_len);
8691 retval = get_adapters_info (ainfo, &ainfo_len);
8692 }
8693
8694 if (retval == ERROR_SUCCESS)
8695 {
8696 int eth_count = 0, tr_count = 0, fddi_count = 0, ppp_count = 0;
8697 int sl_count = 0, wlan_count = 0, lo_count = 0, ifx_count = 0;
8698 int if_num;
8699 struct sockaddr_in sa;
8700
8701 /* For the below, we need some winsock functions, so make sure
8702 the winsock DLL is loaded. If we cannot successfully load
8703 it, they will have no use of the information we provide,
8704 anyway, so punt. */
8705 if (!winsock_lib && !init_winsock (1))
8706 goto done;
8707
8708 for (adapter = ainfo; adapter; adapter = adapter->Next)
8709 {
8710 char namebuf[MAX_ADAPTER_NAME_LENGTH + 4];
8711 u_long ip_addr;
8712 /* Present Unix-compatible interface names, instead of the
8713 Windows names, which are really GUIDs not readable by
8714 humans. */
8715 static const char *ifmt[] = {
8716 "eth%d", "tr%d", "fddi%d", "ppp%d", "sl%d", "wlan%d",
8717 "lo", "ifx%d"
8718 };
8719 enum {
8720 NONE = -1,
8721 ETHERNET = 0,
8722 TOKENRING = 1,
8723 FDDI = 2,
8724 PPP = 3,
8725 SLIP = 4,
8726 WLAN = 5,
8727 LOOPBACK = 6,
8728 OTHER_IF = 7
8729 } ifmt_idx;
8730
8731 switch (adapter->Type)
8732 {
8733 case MIB_IF_TYPE_ETHERNET:
8734 /* Windows before Vista reports wireless adapters as
8735 Ethernet. Work around by looking at the Description
8736 string. */
8737 if (strstr (adapter->Description, "Wireless "))
8738 {
8739 ifmt_idx = WLAN;
8740 if_num = wlan_count++;
8741 }
8742 else
8743 {
8744 ifmt_idx = ETHERNET;
8745 if_num = eth_count++;
8746 }
8747 break;
8748 case MIB_IF_TYPE_TOKENRING:
8749 ifmt_idx = TOKENRING;
8750 if_num = tr_count++;
8751 break;
8752 case MIB_IF_TYPE_FDDI:
8753 ifmt_idx = FDDI;
8754 if_num = fddi_count++;
8755 break;
8756 case MIB_IF_TYPE_PPP:
8757 ifmt_idx = PPP;
8758 if_num = ppp_count++;
8759 break;
8760 case MIB_IF_TYPE_SLIP:
8761 ifmt_idx = SLIP;
8762 if_num = sl_count++;
8763 break;
8764 case IF_TYPE_IEEE80211:
8765 ifmt_idx = WLAN;
8766 if_num = wlan_count++;
8767 break;
8768 case MIB_IF_TYPE_LOOPBACK:
8769 if (lo_count < 0)
8770 {
8771 ifmt_idx = LOOPBACK;
8772 if_num = lo_count++;
8773 }
8774 else
8775 ifmt_idx = NONE;
8776 break;
8777 default:
8778 ifmt_idx = OTHER_IF;
8779 if_num = ifx_count++;
8780 break;
8781 }
8782 if (ifmt_idx == NONE)
8783 continue;
8784 sprintf (namebuf, ifmt[ifmt_idx], if_num);
8785
8786 sa.sin_family = AF_INET;
8787 ip_addr = sys_inet_addr (adapter->IpAddressList.IpAddress.String);
8788 if (ip_addr == INADDR_NONE)
8789 {
8790 /* Bogus address, skip this interface. */
8791 continue;
8792 }
8793 sa.sin_addr.s_addr = ip_addr;
8794 sa.sin_port = 0;
8795 if (NILP (ifname))
8796 res = Fcons (Fcons (build_string (namebuf),
8797 conv_sockaddr_to_lisp ((struct sockaddr*) &sa,
8798 sizeof (struct sockaddr))),
8799 res);
8800 else if (strcmp (namebuf, SSDATA (ifname)) == 0)
8801 {
8802 Lisp_Object hwaddr = Fmake_vector (make_number (6), Qnil);
8803 register struct Lisp_Vector *p = XVECTOR (hwaddr);
8804 Lisp_Object flags = Qnil;
8805 int n;
8806 u_long net_mask;
8807
8808 /* Flags. We guess most of them by type, since the
8809 Windows flags are different and hard to get by. */
8810 flags = Fcons (intern ("up"), flags);
8811 if (ifmt_idx == ETHERNET || ifmt_idx == WLAN)
8812 {
8813 flags = Fcons (intern ("broadcast"), flags);
8814 flags = Fcons (intern ("multicast"), flags);
8815 }
8816 flags = Fcons (intern ("running"), flags);
8817 if (ifmt_idx == PPP)
8818 {
8819 flags = Fcons (intern ("pointopoint"), flags);
8820 flags = Fcons (intern ("noarp"), flags);
8821 }
8822 if (adapter->HaveWins)
8823 flags = Fcons (intern ("WINS"), flags);
8824 if (adapter->DhcpEnabled)
8825 flags = Fcons (intern ("dynamic"), flags);
8826
8827 res = Fcons (flags, res);
8828
8829 /* Hardware address and its family. */
8830 for (n = 0; n < adapter->AddressLength; n++)
8831 p->contents[n] = make_number ((int) adapter->Address[n]);
8832 /* Windows does not support AF_LINK or AF_PACKET family
8833 of addresses. Use an arbitrary family number that is
8834 identical to what GNU/Linux returns. */
8835 res = Fcons (Fcons (make_number (1), hwaddr), res);
8836
8837 /* Network mask. */
8838 sa.sin_family = AF_INET;
8839 net_mask = sys_inet_addr (adapter->IpAddressList.IpMask.String);
8840 if (net_mask != INADDR_NONE)
8841 {
8842 sa.sin_addr.s_addr = net_mask;
8843 sa.sin_port = 0;
8844 res = Fcons (conv_sockaddr_to_lisp ((struct sockaddr *) &sa,
8845 sizeof (struct sockaddr)),
8846 res);
8847 }
8848 else
8849 res = Fcons (Qnil, res);
8850
8851 sa.sin_family = AF_INET;
8852 if (ip_addr != INADDR_NONE)
8853 {
8854 /* Broadcast address is only reported by
8855 GetAdaptersAddresses, which is of limited
8856 availability. Generate it on our own. */
8857 u_long bcast_addr = (ip_addr & net_mask) | ~net_mask;
8858
8859 sa.sin_addr.s_addr = bcast_addr;
8860 sa.sin_port = 0;
8861 res = Fcons (conv_sockaddr_to_lisp ((struct sockaddr *) &sa,
8862 sizeof (struct sockaddr)),
8863 res);
8864
8865 /* IP address. */
8866 sa.sin_addr.s_addr = ip_addr;
8867 sa.sin_port = 0;
8868 res = Fcons (conv_sockaddr_to_lisp ((struct sockaddr *) &sa,
8869 sizeof (struct sockaddr)),
8870 res);
8871 }
8872 else
8873 res = Fcons (Qnil, Fcons (Qnil, res));
8874 }
8875 }
8876 /* GetAdaptersInfo is documented to not report loopback
8877 interfaces, so we generate one out of thin air. */
8878 if (!lo_count)
8879 {
8880 sa.sin_family = AF_INET;
8881 sa.sin_port = 0;
8882 if (NILP (ifname))
8883 {
8884 sa.sin_addr.s_addr = sys_inet_addr ("127.0.0.1");
8885 res = Fcons (Fcons (build_string ("lo"),
8886 conv_sockaddr_to_lisp ((struct sockaddr*) &sa,
8887 sizeof (struct sockaddr))),
8888 res);
8889 }
8890 else if (strcmp (SSDATA (ifname), "lo") == 0)
8891 {
8892 res = Fcons (Fcons (intern ("running"),
8893 Fcons (intern ("loopback"),
8894 Fcons (intern ("up"), Qnil))), Qnil);
8895 /* 772 is what 3 different GNU/Linux systems report for
8896 the loopback interface. */
8897 res = Fcons (Fcons (make_number (772),
8898 Fmake_vector (make_number (6),
8899 make_number (0))),
8900 res);
8901 sa.sin_addr.s_addr = sys_inet_addr ("255.0.0.0");
8902 res = Fcons (conv_sockaddr_to_lisp ((struct sockaddr *) &sa,
8903 sizeof (struct sockaddr)),
8904 res);
8905 sa.sin_addr.s_addr = sys_inet_addr ("0.0.0.0");
8906 res = Fcons (conv_sockaddr_to_lisp ((struct sockaddr *) &sa,
8907 sizeof (struct sockaddr)),
8908 res);
8909 sa.sin_addr.s_addr = sys_inet_addr ("127.0.0.1");
8910 res = Fcons (conv_sockaddr_to_lisp ((struct sockaddr *) &sa,
8911 sizeof (struct sockaddr)),
8912 res);
8913 }
8914
8915 }
8916 }
8917
8918 done:
8919 xfree (ainfo);
8920 return res;
8921 }
8922
8923 Lisp_Object
8924 network_interface_list (void)
8925 {
8926 return network_interface_get_info (Qnil);
8927 }
8928
8929 Lisp_Object
8930 network_interface_info (Lisp_Object ifname)
8931 {
8932 CHECK_STRING (ifname);
8933 return network_interface_get_info (ifname);
8934 }
8935
8936 \f
8937 /* The Windows CRT functions are "optimized for speed", so they don't
8938 check for timezone and DST changes if they were last called less
8939 than 1 minute ago (see http://support.microsoft.com/kb/821231). So
8940 all Emacs features that repeatedly call time functions (e.g.,
8941 display-time) are in real danger of missing timezone and DST
8942 changes. Calling tzset before each localtime call fixes that. */
8943 struct tm *
8944 sys_localtime (const time_t *t)
8945 {
8946 tzset ();
8947 return localtime (t);
8948 }
8949
8950
8951 \f
8952 /* Try loading LIBRARY_ID from the file(s) specified in
8953 Vdynamic_library_alist. If the library is loaded successfully,
8954 return the handle of the DLL, and record the filename in the
8955 property :loaded-from of LIBRARY_ID. If the library could not be
8956 found, or when it was already loaded (because the handle is not
8957 recorded anywhere, and so is lost after use), return NULL.
8958
8959 We could also save the handle in :loaded-from, but currently
8960 there's no use case for it. */
8961 HMODULE
8962 w32_delayed_load (Lisp_Object library_id)
8963 {
8964 HMODULE dll_handle = NULL;
8965
8966 CHECK_SYMBOL (library_id);
8967
8968 if (CONSP (Vdynamic_library_alist)
8969 && NILP (Fassq (library_id, Vlibrary_cache)))
8970 {
8971 Lisp_Object found = Qnil;
8972 Lisp_Object dlls = Fassq (library_id, Vdynamic_library_alist);
8973
8974 if (CONSP (dlls))
8975 for (dlls = XCDR (dlls); CONSP (dlls); dlls = XCDR (dlls))
8976 {
8977 Lisp_Object dll = XCAR (dlls);
8978 char name[MAX_UTF8_PATH];
8979 DWORD res = -1;
8980
8981 CHECK_STRING (dll);
8982 dll = ENCODE_FILE (dll);
8983 if (w32_unicode_filenames)
8984 {
8985 wchar_t name_w[MAX_PATH];
8986
8987 filename_to_utf16 (SSDATA (dll), name_w);
8988 dll_handle = LoadLibraryW (name_w);
8989 if (dll_handle)
8990 {
8991 res = GetModuleFileNameW (dll_handle, name_w,
8992 sizeof (name_w));
8993 if (res > 0)
8994 filename_from_utf16 (name_w, name);
8995 }
8996 }
8997 else
8998 {
8999 char name_a[MAX_PATH];
9000
9001 filename_to_ansi (SSDATA (dll), name_a);
9002 dll_handle = LoadLibraryA (name_a);
9003 if (dll_handle)
9004 {
9005 res = GetModuleFileNameA (dll_handle, name_a,
9006 sizeof (name_a));
9007 if (res > 0)
9008 filename_from_ansi (name_a, name);
9009 }
9010 }
9011 if (dll_handle)
9012 {
9013 ptrdiff_t len = strlen (name);
9014 found = Fcons (dll,
9015 (res > 0)
9016 /* Possibly truncated */
9017 ? make_specified_string (name, -1, len, 1)
9018 : Qnil);
9019 /* This prevents thread start and end notifications
9020 from being sent to the DLL, for every thread we
9021 start. We don't need those notifications because
9022 threads we create never use any of these DLLs, only
9023 the main thread uses them. This is supposed to
9024 speed up thread creation. */
9025 DisableThreadLibraryCalls (dll_handle);
9026 break;
9027 }
9028 }
9029
9030 Fput (library_id, QCloaded_from, found);
9031 }
9032
9033 return dll_handle;
9034 }
9035
9036 \f
9037 void
9038 check_windows_init_file (void)
9039 {
9040 /* A common indication that Emacs is not installed properly is when
9041 it cannot find the Windows installation file. If this file does
9042 not exist in the expected place, tell the user. */
9043
9044 if (!noninteractive && !inhibit_window_system
9045 /* Vload_path is not yet initialized when we are loading
9046 loadup.el. */
9047 && NILP (Vpurify_flag))
9048 {
9049 Lisp_Object init_file;
9050 int fd;
9051
9052 /* Implementation note: this function runs early during Emacs
9053 startup, before startup.el is run. So Vload_path is still in
9054 its initial unibyte form, but it holds UTF-8 encoded file
9055 names, since init_callproc was already called. So we do not
9056 need to ENCODE_FILE here, but we do need to convert the file
9057 names from UTF-8 to ANSI. */
9058 init_file = build_string ("term/w32-win");
9059 fd = openp (Vload_path, init_file, Fget_load_suffixes (), NULL, Qnil, 0);
9060 if (fd < 0)
9061 {
9062 Lisp_Object load_path_print = Fprin1_to_string (Vload_path, Qnil);
9063 char *init_file_name = SDATA (init_file);
9064 char *load_path = SDATA (load_path_print);
9065 char *buffer = alloca (1024
9066 + strlen (init_file_name)
9067 + strlen (load_path));
9068 char *msg = buffer;
9069 int needed;
9070
9071 sprintf (buffer,
9072 "The Emacs Windows initialization file \"%s.el\" "
9073 "could not be found in your Emacs installation. "
9074 "Emacs checked the following directories for this file:\n"
9075 "\n%s\n\n"
9076 "When Emacs cannot find this file, it usually means that it "
9077 "was not installed properly, or its distribution file was "
9078 "not unpacked properly.\nSee the README.W32 file in the "
9079 "top-level Emacs directory for more information.",
9080 init_file_name, load_path);
9081 needed = pMultiByteToWideChar (CP_UTF8, MB_ERR_INVALID_CHARS, buffer,
9082 -1, NULL, 0);
9083 if (needed > 0)
9084 {
9085 wchar_t *msg_w = alloca ((needed + 1) * sizeof (wchar_t));
9086
9087 pMultiByteToWideChar (CP_UTF8, MB_ERR_INVALID_CHARS, buffer, -1,
9088 msg_w, needed);
9089 needed = pWideCharToMultiByte (CP_ACP, 0, msg_w, -1,
9090 NULL, 0, NULL, NULL);
9091 if (needed > 0)
9092 {
9093 char *msg_a = alloca (needed + 1);
9094
9095 pWideCharToMultiByte (CP_ACP, 0, msg_w, -1, msg_a, needed,
9096 NULL, NULL);
9097 msg = msg_a;
9098 }
9099 }
9100 MessageBox (NULL,
9101 msg,
9102 "Emacs Abort Dialog",
9103 MB_OK | MB_ICONEXCLAMATION | MB_TASKMODAL);
9104 /* Use the low-level system abort. */
9105 abort ();
9106 }
9107 else
9108 {
9109 _close (fd);
9110 }
9111 }
9112 }
9113
9114 void
9115 term_ntproc (int ignored)
9116 {
9117 (void)ignored;
9118
9119 term_timers ();
9120
9121 /* shutdown the socket interface if necessary */
9122 term_winsock ();
9123
9124 term_w32select ();
9125 }
9126
9127 void
9128 init_ntproc (int dumping)
9129 {
9130 sigset_t initial_mask = 0;
9131
9132 /* Initialize the socket interface now if available and requested by
9133 the user by defining PRELOAD_WINSOCK; otherwise loading will be
9134 delayed until open-network-stream is called (w32-has-winsock can
9135 also be used to dynamically load or reload winsock).
9136
9137 Conveniently, init_environment is called before us, so
9138 PRELOAD_WINSOCK can be set in the registry. */
9139
9140 /* Always initialize this correctly. */
9141 winsock_lib = NULL;
9142
9143 if (getenv ("PRELOAD_WINSOCK") != NULL)
9144 init_winsock (TRUE);
9145
9146 /* Initial preparation for subprocess support: replace our standard
9147 handles with non-inheritable versions. */
9148 {
9149 HANDLE parent;
9150 HANDLE stdin_save = INVALID_HANDLE_VALUE;
9151 HANDLE stdout_save = INVALID_HANDLE_VALUE;
9152 HANDLE stderr_save = INVALID_HANDLE_VALUE;
9153
9154 parent = GetCurrentProcess ();
9155
9156 /* ignore errors when duplicating and closing; typically the
9157 handles will be invalid when running as a gui program. */
9158 DuplicateHandle (parent,
9159 GetStdHandle (STD_INPUT_HANDLE),
9160 parent,
9161 &stdin_save,
9162 0,
9163 FALSE,
9164 DUPLICATE_SAME_ACCESS);
9165
9166 DuplicateHandle (parent,
9167 GetStdHandle (STD_OUTPUT_HANDLE),
9168 parent,
9169 &stdout_save,
9170 0,
9171 FALSE,
9172 DUPLICATE_SAME_ACCESS);
9173
9174 DuplicateHandle (parent,
9175 GetStdHandle (STD_ERROR_HANDLE),
9176 parent,
9177 &stderr_save,
9178 0,
9179 FALSE,
9180 DUPLICATE_SAME_ACCESS);
9181
9182 fclose (stdin);
9183 fclose (stdout);
9184 fclose (stderr);
9185
9186 if (stdin_save != INVALID_HANDLE_VALUE)
9187 _open_osfhandle ((intptr_t) stdin_save, O_TEXT);
9188 else
9189 _open ("nul", O_TEXT | O_NOINHERIT | O_RDONLY);
9190 _fdopen (0, "r");
9191
9192 if (stdout_save != INVALID_HANDLE_VALUE)
9193 _open_osfhandle ((intptr_t) stdout_save, O_TEXT);
9194 else
9195 _open ("nul", O_TEXT | O_NOINHERIT | O_WRONLY);
9196 _fdopen (1, "w");
9197
9198 if (stderr_save != INVALID_HANDLE_VALUE)
9199 _open_osfhandle ((intptr_t) stderr_save, O_TEXT);
9200 else
9201 _open ("nul", O_TEXT | O_NOINHERIT | O_WRONLY);
9202 _fdopen (2, "w");
9203 }
9204
9205 /* unfortunately, atexit depends on implementation of malloc */
9206 /* atexit (term_ntproc); */
9207 if (!dumping)
9208 {
9209 /* Make sure we start with all signals unblocked. */
9210 sigprocmask (SIG_SETMASK, &initial_mask, NULL);
9211 signal (SIGABRT, term_ntproc);
9212 }
9213 init_timers ();
9214
9215 /* determine which drives are fixed, for GetCachedVolumeInformation */
9216 {
9217 /* GetDriveType must have trailing backslash. */
9218 char drive[] = "A:\\";
9219
9220 /* Loop over all possible drive letters */
9221 while (*drive <= 'Z')
9222 {
9223 /* Record if this drive letter refers to a fixed drive. */
9224 fixed_drives[DRIVE_INDEX (*drive)] =
9225 (GetDriveType (drive) == DRIVE_FIXED);
9226
9227 (*drive)++;
9228 }
9229
9230 /* Reset the volume info cache. */
9231 volume_cache = NULL;
9232 }
9233 }
9234
9235 /*
9236 shutdown_handler ensures that buffers' autosave files are
9237 up to date when the user logs off, or the system shuts down.
9238 */
9239 static BOOL WINAPI
9240 shutdown_handler (DWORD type)
9241 {
9242 /* Ctrl-C and Ctrl-Break are already suppressed, so don't handle them. */
9243 if (type == CTRL_CLOSE_EVENT /* User closes console window. */
9244 || type == CTRL_LOGOFF_EVENT /* User logs off. */
9245 || type == CTRL_SHUTDOWN_EVENT) /* User shutsdown. */
9246 {
9247 /* Shut down cleanly, making sure autosave files are up to date. */
9248 shut_down_emacs (0, Qnil);
9249 }
9250
9251 /* Allow other handlers to handle this signal. */
9252 return FALSE;
9253 }
9254
9255 /* On Windows 9X, load UNICOWS.DLL and return its handle, or die. On
9256 NT, return a handle to GDI32.DLL. */
9257 HANDLE
9258 maybe_load_unicows_dll (void)
9259 {
9260 if (os_subtype == OS_9X)
9261 {
9262 HANDLE ret = LoadLibrary ("Unicows.dll");
9263 if (ret)
9264 {
9265 /* These two functions are present on Windows 9X as stubs
9266 that always fail. We need the real implementations from
9267 UNICOWS.DLL, so we must call these functions through
9268 pointers, and assign the correct addresses to these
9269 pointers at program startup (see emacs.c, which calls
9270 this function early on). */
9271 pMultiByteToWideChar = GetProcAddress (ret, "MultiByteToWideChar");
9272 pWideCharToMultiByte = GetProcAddress (ret, "WideCharToMultiByte");
9273 return ret;
9274 }
9275 else
9276 {
9277 int button;
9278
9279 button = MessageBox (NULL,
9280 "Emacs cannot load the UNICOWS.DLL library.\n"
9281 "This library is essential for using Emacs\n"
9282 "on this system. You need to install it.\n\n"
9283 "Emacs will exit when you click OK.",
9284 "Emacs cannot load UNICOWS.DLL",
9285 MB_ICONERROR | MB_TASKMODAL
9286 | MB_SETFOREGROUND | MB_OK);
9287 switch (button)
9288 {
9289 case IDOK:
9290 default:
9291 exit (1);
9292 }
9293 }
9294 }
9295 else
9296 {
9297 /* On NT family of Windows, these two functions are always
9298 linked in, so we just assign their addresses to the 2
9299 pointers; no need for the LoadLibrary dance. */
9300 pMultiByteToWideChar = MultiByteToWideChar;
9301 pWideCharToMultiByte = WideCharToMultiByte;
9302 return LoadLibrary ("Gdi32.dll");
9303 }
9304 }
9305
9306 /*
9307 globals_of_w32 is used to initialize those global variables that
9308 must always be initialized on startup even when the global variable
9309 initialized is non zero (see the function main in emacs.c).
9310 */
9311 void
9312 globals_of_w32 (void)
9313 {
9314 HMODULE kernel32 = GetModuleHandle ("kernel32.dll");
9315
9316 get_process_times_fn = (GetProcessTimes_Proc)
9317 GetProcAddress (kernel32, "GetProcessTimes");
9318
9319 DEFSYM (QCloaded_from, ":loaded-from");
9320
9321 g_b_init_is_windows_9x = 0;
9322 g_b_init_open_process_token = 0;
9323 g_b_init_get_token_information = 0;
9324 g_b_init_lookup_account_sid = 0;
9325 g_b_init_get_sid_sub_authority = 0;
9326 g_b_init_get_sid_sub_authority_count = 0;
9327 g_b_init_get_security_info = 0;
9328 g_b_init_get_file_security_w = 0;
9329 g_b_init_get_file_security_a = 0;
9330 g_b_init_get_security_descriptor_owner = 0;
9331 g_b_init_get_security_descriptor_group = 0;
9332 g_b_init_is_valid_sid = 0;
9333 g_b_init_create_toolhelp32_snapshot = 0;
9334 g_b_init_process32_first = 0;
9335 g_b_init_process32_next = 0;
9336 g_b_init_open_thread_token = 0;
9337 g_b_init_impersonate_self = 0;
9338 g_b_init_revert_to_self = 0;
9339 g_b_init_get_process_memory_info = 0;
9340 g_b_init_get_process_working_set_size = 0;
9341 g_b_init_global_memory_status = 0;
9342 g_b_init_global_memory_status_ex = 0;
9343 g_b_init_equal_sid = 0;
9344 g_b_init_copy_sid = 0;
9345 g_b_init_get_length_sid = 0;
9346 g_b_init_get_native_system_info = 0;
9347 g_b_init_get_system_times = 0;
9348 g_b_init_create_symbolic_link_w = 0;
9349 g_b_init_create_symbolic_link_a = 0;
9350 g_b_init_get_security_descriptor_dacl = 0;
9351 g_b_init_convert_sd_to_sddl = 0;
9352 g_b_init_convert_sddl_to_sd = 0;
9353 g_b_init_is_valid_security_descriptor = 0;
9354 g_b_init_set_file_security_w = 0;
9355 g_b_init_set_file_security_a = 0;
9356 g_b_init_set_named_security_info_w = 0;
9357 g_b_init_set_named_security_info_a = 0;
9358 g_b_init_get_adapters_info = 0;
9359 g_b_init_compare_string_w = 0;
9360 num_of_processors = 0;
9361 /* The following sets a handler for shutdown notifications for
9362 console apps. This actually applies to Emacs in both console and
9363 GUI modes, since we had to fool windows into thinking emacs is a
9364 console application to get console mode to work. */
9365 SetConsoleCtrlHandler (shutdown_handler, TRUE);
9366
9367 /* "None" is the default group name on standalone workstations. */
9368 strcpy (dflt_group_name, "None");
9369
9370 /* Reset, in case it has some value inherited from dump time. */
9371 w32_stat_get_owner_group = 0;
9372
9373 /* If w32_unicode_filenames is non-zero, we will be using Unicode
9374 (a.k.a. "wide") APIs to invoke functions that accept file
9375 names. */
9376 if (is_windows_9x ())
9377 w32_unicode_filenames = 0;
9378 else
9379 w32_unicode_filenames = 1;
9380 }
9381
9382 /* For make-serial-process */
9383 int
9384 serial_open (Lisp_Object port_obj)
9385 {
9386 char *port = SSDATA (port_obj);
9387 HANDLE hnd;
9388 child_process *cp;
9389 int fd = -1;
9390
9391 hnd = CreateFile (port, GENERIC_READ | GENERIC_WRITE, 0, 0,
9392 OPEN_EXISTING, FILE_FLAG_OVERLAPPED, 0);
9393 if (hnd == INVALID_HANDLE_VALUE)
9394 error ("Could not open %s", port);
9395 fd = (int) _open_osfhandle ((intptr_t) hnd, 0);
9396 if (fd == -1)
9397 error ("Could not open %s", port);
9398
9399 cp = new_child ();
9400 if (!cp)
9401 error ("Could not create child process");
9402 cp->fd = fd;
9403 cp->status = STATUS_READ_ACKNOWLEDGED;
9404 fd_info[ fd ].hnd = hnd;
9405 fd_info[ fd ].flags |=
9406 FILE_READ | FILE_WRITE | FILE_BINARY | FILE_SERIAL;
9407 if (fd_info[ fd ].cp != NULL)
9408 {
9409 error ("fd_info[fd = %d] is already in use", fd);
9410 }
9411 fd_info[ fd ].cp = cp;
9412 cp->ovl_read.hEvent = CreateEvent (NULL, TRUE, FALSE, NULL);
9413 if (cp->ovl_read.hEvent == NULL)
9414 error ("Could not create read event");
9415 cp->ovl_write.hEvent = CreateEvent (NULL, TRUE, FALSE, NULL);
9416 if (cp->ovl_write.hEvent == NULL)
9417 error ("Could not create write event");
9418
9419 return fd;
9420 }
9421
9422 /* For serial-process-configure */
9423 void
9424 serial_configure (struct Lisp_Process *p, Lisp_Object contact)
9425 {
9426 Lisp_Object childp2 = Qnil;
9427 Lisp_Object tem = Qnil;
9428 HANDLE hnd;
9429 DCB dcb;
9430 COMMTIMEOUTS ct;
9431 char summary[4] = "???"; /* This usually becomes "8N1". */
9432
9433 if ((fd_info[ p->outfd ].flags & FILE_SERIAL) == 0)
9434 error ("Not a serial process");
9435 hnd = fd_info[ p->outfd ].hnd;
9436
9437 childp2 = Fcopy_sequence (p->childp);
9438
9439 /* Initialize timeouts for blocking read and blocking write. */
9440 if (!GetCommTimeouts (hnd, &ct))
9441 error ("GetCommTimeouts() failed");
9442 ct.ReadIntervalTimeout = 0;
9443 ct.ReadTotalTimeoutMultiplier = 0;
9444 ct.ReadTotalTimeoutConstant = 0;
9445 ct.WriteTotalTimeoutMultiplier = 0;
9446 ct.WriteTotalTimeoutConstant = 0;
9447 if (!SetCommTimeouts (hnd, &ct))
9448 error ("SetCommTimeouts() failed");
9449 /* Read port attributes and prepare default configuration. */
9450 memset (&dcb, 0, sizeof (dcb));
9451 dcb.DCBlength = sizeof (DCB);
9452 if (!GetCommState (hnd, &dcb))
9453 error ("GetCommState() failed");
9454 dcb.fBinary = TRUE;
9455 dcb.fNull = FALSE;
9456 dcb.fAbortOnError = FALSE;
9457 /* dcb.XonLim and dcb.XoffLim are set by GetCommState() */
9458 dcb.ErrorChar = 0;
9459 dcb.EofChar = 0;
9460 dcb.EvtChar = 0;
9461
9462 /* Configure speed. */
9463 if (!NILP (Fplist_member (contact, QCspeed)))
9464 tem = Fplist_get (contact, QCspeed);
9465 else
9466 tem = Fplist_get (p->childp, QCspeed);
9467 CHECK_NUMBER (tem);
9468 dcb.BaudRate = XINT (tem);
9469 childp2 = Fplist_put (childp2, QCspeed, tem);
9470
9471 /* Configure bytesize. */
9472 if (!NILP (Fplist_member (contact, QCbytesize)))
9473 tem = Fplist_get (contact, QCbytesize);
9474 else
9475 tem = Fplist_get (p->childp, QCbytesize);
9476 if (NILP (tem))
9477 tem = make_number (8);
9478 CHECK_NUMBER (tem);
9479 if (XINT (tem) != 7 && XINT (tem) != 8)
9480 error (":bytesize must be nil (8), 7, or 8");
9481 dcb.ByteSize = XINT (tem);
9482 summary[0] = XINT (tem) + '0';
9483 childp2 = Fplist_put (childp2, QCbytesize, tem);
9484
9485 /* Configure parity. */
9486 if (!NILP (Fplist_member (contact, QCparity)))
9487 tem = Fplist_get (contact, QCparity);
9488 else
9489 tem = Fplist_get (p->childp, QCparity);
9490 if (!NILP (tem) && !EQ (tem, Qeven) && !EQ (tem, Qodd))
9491 error (":parity must be nil (no parity), `even', or `odd'");
9492 dcb.fParity = FALSE;
9493 dcb.Parity = NOPARITY;
9494 dcb.fErrorChar = FALSE;
9495 if (NILP (tem))
9496 {
9497 summary[1] = 'N';
9498 }
9499 else if (EQ (tem, Qeven))
9500 {
9501 summary[1] = 'E';
9502 dcb.fParity = TRUE;
9503 dcb.Parity = EVENPARITY;
9504 dcb.fErrorChar = TRUE;
9505 }
9506 else if (EQ (tem, Qodd))
9507 {
9508 summary[1] = 'O';
9509 dcb.fParity = TRUE;
9510 dcb.Parity = ODDPARITY;
9511 dcb.fErrorChar = TRUE;
9512 }
9513 childp2 = Fplist_put (childp2, QCparity, tem);
9514
9515 /* Configure stopbits. */
9516 if (!NILP (Fplist_member (contact, QCstopbits)))
9517 tem = Fplist_get (contact, QCstopbits);
9518 else
9519 tem = Fplist_get (p->childp, QCstopbits);
9520 if (NILP (tem))
9521 tem = make_number (1);
9522 CHECK_NUMBER (tem);
9523 if (XINT (tem) != 1 && XINT (tem) != 2)
9524 error (":stopbits must be nil (1 stopbit), 1, or 2");
9525 summary[2] = XINT (tem) + '0';
9526 if (XINT (tem) == 1)
9527 dcb.StopBits = ONESTOPBIT;
9528 else if (XINT (tem) == 2)
9529 dcb.StopBits = TWOSTOPBITS;
9530 childp2 = Fplist_put (childp2, QCstopbits, tem);
9531
9532 /* Configure flowcontrol. */
9533 if (!NILP (Fplist_member (contact, QCflowcontrol)))
9534 tem = Fplist_get (contact, QCflowcontrol);
9535 else
9536 tem = Fplist_get (p->childp, QCflowcontrol);
9537 if (!NILP (tem) && !EQ (tem, Qhw) && !EQ (tem, Qsw))
9538 error (":flowcontrol must be nil (no flowcontrol), `hw', or `sw'");
9539 dcb.fOutxCtsFlow = FALSE;
9540 dcb.fOutxDsrFlow = FALSE;
9541 dcb.fDtrControl = DTR_CONTROL_DISABLE;
9542 dcb.fDsrSensitivity = FALSE;
9543 dcb.fTXContinueOnXoff = FALSE;
9544 dcb.fOutX = FALSE;
9545 dcb.fInX = FALSE;
9546 dcb.fRtsControl = RTS_CONTROL_DISABLE;
9547 dcb.XonChar = 17; /* Control-Q */
9548 dcb.XoffChar = 19; /* Control-S */
9549 if (NILP (tem))
9550 {
9551 /* Already configured. */
9552 }
9553 else if (EQ (tem, Qhw))
9554 {
9555 dcb.fRtsControl = RTS_CONTROL_HANDSHAKE;
9556 dcb.fOutxCtsFlow = TRUE;
9557 }
9558 else if (EQ (tem, Qsw))
9559 {
9560 dcb.fOutX = TRUE;
9561 dcb.fInX = TRUE;
9562 }
9563 childp2 = Fplist_put (childp2, QCflowcontrol, tem);
9564
9565 /* Activate configuration. */
9566 if (!SetCommState (hnd, &dcb))
9567 error ("SetCommState() failed");
9568
9569 childp2 = Fplist_put (childp2, QCsummary, build_string (summary));
9570 pset_childp (p, childp2);
9571 }
9572
9573 /* For make-pipe-process */
9574 void
9575 register_aux_fd (int infd)
9576 {
9577 child_process *cp;
9578
9579 cp = new_child ();
9580 if (!cp)
9581 error ("Could not create child process");
9582 cp->fd = infd;
9583 cp->status = STATUS_READ_ACKNOWLEDGED;
9584
9585 if (fd_info[ infd ].cp != NULL)
9586 {
9587 error ("fd_info[fd = %d] is already in use", infd);
9588 }
9589 fd_info[ infd ].cp = cp;
9590 fd_info[ infd ].hnd = (HANDLE) _get_osfhandle (infd);
9591 }
9592
9593 #ifdef HAVE_GNUTLS
9594
9595 ssize_t
9596 emacs_gnutls_pull (gnutls_transport_ptr_t p, void* buf, size_t sz)
9597 {
9598 int n, err;
9599 struct Lisp_Process *process = (struct Lisp_Process *)p;
9600 int fd = process->infd;
9601
9602 n = sys_read (fd, (char*)buf, sz);
9603
9604 if (n >= 0)
9605 return n;
9606
9607 err = errno;
9608
9609 /* Translate the WSAEWOULDBLOCK alias EWOULDBLOCK to EAGAIN. */
9610 if (err == EWOULDBLOCK)
9611 err = EAGAIN;
9612
9613 emacs_gnutls_transport_set_errno (process->gnutls_state, err);
9614
9615 return -1;
9616 }
9617
9618 ssize_t
9619 emacs_gnutls_push (gnutls_transport_ptr_t p, const void* buf, size_t sz)
9620 {
9621 struct Lisp_Process *process = (struct Lisp_Process *)p;
9622 int fd = process->outfd;
9623 ssize_t n = sys_write (fd, buf, sz);
9624
9625 /* 0 or more bytes written means everything went fine. */
9626 if (n >= 0)
9627 return n;
9628
9629 /* Negative bytes written means we got an error in errno.
9630 Translate the WSAEWOULDBLOCK alias EWOULDBLOCK to EAGAIN. */
9631 emacs_gnutls_transport_set_errno (process->gnutls_state,
9632 errno == EWOULDBLOCK ? EAGAIN : errno);
9633
9634 return -1;
9635 }
9636 #endif /* HAVE_GNUTLS */
9637
9638 /* end of w32.c */