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1 /* Fundamental definitions for GNU Emacs Lisp interpreter. -*- coding: utf-8 -*-
2
3 Copyright (C) 1985-1987, 1993-1995, 1997-2015 Free Software Foundation,
4 Inc.
5
6 This file is part of GNU Emacs.
7
8 GNU Emacs is free software: you can redistribute it and/or modify
9 it under the terms of the GNU General Public License as published by
10 the Free Software Foundation, either version 3 of the License, or
11 (at your option) any later version.
12
13 GNU Emacs is distributed in the hope that it will be useful,
14 but WITHOUT ANY WARRANTY; without even the implied warranty of
15 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16 GNU General Public License for more details.
17
18 You should have received a copy of the GNU General Public License
19 along with GNU Emacs. If not, see <http://www.gnu.org/licenses/>. */
20
21 #ifndef EMACS_LISP_H
22 #define EMACS_LISP_H
23
24 #include <setjmp.h>
25 #include <stdalign.h>
26 #include <stdarg.h>
27 #include <stddef.h>
28 #include <float.h>
29 #include <inttypes.h>
30 #include <limits.h>
31
32 #include <intprops.h>
33 #include <verify.h>
34
35 INLINE_HEADER_BEGIN
36
37 /* Define a TYPE constant ID as an externally visible name. Use like this:
38
39 DEFINE_GDB_SYMBOL_BEGIN (TYPE, ID)
40 # define ID (some integer preprocessor expression of type TYPE)
41 DEFINE_GDB_SYMBOL_END (ID)
42
43 This hack is for the benefit of compilers that do not make macro
44 definitions or enums visible to the debugger. It's used for symbols
45 that .gdbinit needs. */
46
47 #define DECLARE_GDB_SYM(type, id) type const id EXTERNALLY_VISIBLE
48 #ifdef MAIN_PROGRAM
49 # define DEFINE_GDB_SYMBOL_BEGIN(type, id) DECLARE_GDB_SYM (type, id)
50 # define DEFINE_GDB_SYMBOL_END(id) = id;
51 #else
52 # define DEFINE_GDB_SYMBOL_BEGIN(type, id) extern DECLARE_GDB_SYM (type, id)
53 # define DEFINE_GDB_SYMBOL_END(val) ;
54 #endif
55
56 /* The ubiquitous max and min macros. */
57 #undef min
58 #undef max
59 #define max(a, b) ((a) > (b) ? (a) : (b))
60 #define min(a, b) ((a) < (b) ? (a) : (b))
61
62 /* Number of elements in an array. */
63 #define ARRAYELTS(arr) (sizeof (arr) / sizeof (arr)[0])
64
65 /* Number of bits in a Lisp_Object tag. */
66 DEFINE_GDB_SYMBOL_BEGIN (int, GCTYPEBITS)
67 #define GCTYPEBITS 3
68 DEFINE_GDB_SYMBOL_END (GCTYPEBITS)
69
70 /* The number of bits needed in an EMACS_INT over and above the number
71 of bits in a pointer. This is 0 on systems where:
72 1. We can specify multiple-of-8 alignment on static variables.
73 2. We know malloc returns a multiple of 8. */
74 #if (defined alignas \
75 && (defined GNU_MALLOC || defined DOUG_LEA_MALLOC || defined __GLIBC__ \
76 || defined DARWIN_OS || defined __sun || defined __MINGW32__ \
77 || defined CYGWIN))
78 # define NONPOINTER_BITS 0
79 #else
80 # define NONPOINTER_BITS GCTYPEBITS
81 #endif
82
83 /* EMACS_INT - signed integer wide enough to hold an Emacs value
84 EMACS_INT_MAX - maximum value of EMACS_INT; can be used in #if
85 pI - printf length modifier for EMACS_INT
86 EMACS_UINT - unsigned variant of EMACS_INT */
87 #ifndef EMACS_INT_MAX
88 # if INTPTR_MAX <= 0
89 # error "INTPTR_MAX misconfigured"
90 # elif INTPTR_MAX <= INT_MAX >> NONPOINTER_BITS && !defined WIDE_EMACS_INT
91 typedef int EMACS_INT;
92 typedef unsigned int EMACS_UINT;
93 # define EMACS_INT_MAX INT_MAX
94 # define pI ""
95 # elif INTPTR_MAX <= LONG_MAX >> NONPOINTER_BITS && !defined WIDE_EMACS_INT
96 typedef long int EMACS_INT;
97 typedef unsigned long EMACS_UINT;
98 # define EMACS_INT_MAX LONG_MAX
99 # define pI "l"
100 /* Check versus LLONG_MAX, not LLONG_MAX >> NONPOINTER_BITS.
101 In theory this is not safe, but in practice it seems to be OK. */
102 # elif INTPTR_MAX <= LLONG_MAX
103 typedef long long int EMACS_INT;
104 typedef unsigned long long int EMACS_UINT;
105 # define EMACS_INT_MAX LLONG_MAX
106 # define pI "ll"
107 # else
108 # error "INTPTR_MAX too large"
109 # endif
110 #endif
111
112 /* Number of bits to put in each character in the internal representation
113 of bool vectors. This should not vary across implementations. */
114 enum { BOOL_VECTOR_BITS_PER_CHAR =
115 #define BOOL_VECTOR_BITS_PER_CHAR 8
116 BOOL_VECTOR_BITS_PER_CHAR
117 };
118
119 /* An unsigned integer type representing a fixed-length bit sequence,
120 suitable for bool vector words, GC mark bits, etc. Normally it is size_t
121 for speed, but it is unsigned char on weird platforms. */
122 #if BOOL_VECTOR_BITS_PER_CHAR == CHAR_BIT
123 typedef size_t bits_word;
124 # define BITS_WORD_MAX SIZE_MAX
125 enum { BITS_PER_BITS_WORD = CHAR_BIT * sizeof (bits_word) };
126 #else
127 typedef unsigned char bits_word;
128 # define BITS_WORD_MAX ((1u << BOOL_VECTOR_BITS_PER_CHAR) - 1)
129 enum { BITS_PER_BITS_WORD = BOOL_VECTOR_BITS_PER_CHAR };
130 #endif
131 verify (BITS_WORD_MAX >> (BITS_PER_BITS_WORD - 1) == 1);
132
133 /* Number of bits in some machine integer types. */
134 enum
135 {
136 BITS_PER_CHAR = CHAR_BIT,
137 BITS_PER_SHORT = CHAR_BIT * sizeof (short),
138 BITS_PER_LONG = CHAR_BIT * sizeof (long int),
139 BITS_PER_EMACS_INT = CHAR_BIT * sizeof (EMACS_INT)
140 };
141
142 /* printmax_t and uprintmax_t are types for printing large integers.
143 These are the widest integers that are supported for printing.
144 pMd etc. are conversions for printing them.
145 On C99 hosts, there's no problem, as even the widest integers work.
146 Fall back on EMACS_INT on pre-C99 hosts. */
147 #ifdef PRIdMAX
148 typedef intmax_t printmax_t;
149 typedef uintmax_t uprintmax_t;
150 # define pMd PRIdMAX
151 # define pMu PRIuMAX
152 #else
153 typedef EMACS_INT printmax_t;
154 typedef EMACS_UINT uprintmax_t;
155 # define pMd pI"d"
156 # define pMu pI"u"
157 #endif
158
159 /* Use pD to format ptrdiff_t values, which suffice for indexes into
160 buffers and strings. Emacs never allocates objects larger than
161 PTRDIFF_MAX bytes, as they cause problems with pointer subtraction.
162 In C99, pD can always be "t"; configure it here for the sake of
163 pre-C99 libraries such as glibc 2.0 and Solaris 8. */
164 #if PTRDIFF_MAX == INT_MAX
165 # define pD ""
166 #elif PTRDIFF_MAX == LONG_MAX
167 # define pD "l"
168 #elif PTRDIFF_MAX == LLONG_MAX
169 # define pD "ll"
170 #else
171 # define pD "t"
172 #endif
173
174 /* Extra internal type checking? */
175
176 /* Define Emacs versions of <assert.h>'s 'assert (COND)' and <verify.h>'s
177 'assume (COND)'. COND should be free of side effects, as it may or
178 may not be evaluated.
179
180 'eassert (COND)' checks COND at runtime if ENABLE_CHECKING is
181 defined and suppress_checking is false, and does nothing otherwise.
182 Emacs dies if COND is checked and is false. The suppress_checking
183 variable is initialized to 0 in alloc.c. Set it to 1 using a
184 debugger to temporarily disable aborting on detected internal
185 inconsistencies or error conditions.
186
187 In some cases, a good compiler may be able to optimize away the
188 eassert macro even if ENABLE_CHECKING is true, e.g., if XSTRING (x)
189 uses eassert to test STRINGP (x), but a particular use of XSTRING
190 is invoked only after testing that STRINGP (x) is true, making the
191 test redundant.
192
193 eassume is like eassert except that it also causes the compiler to
194 assume that COND is true afterwards, regardless of whether runtime
195 checking is enabled. This can improve performance in some cases,
196 though it can degrade performance in others. It's often suboptimal
197 for COND to call external functions or access volatile storage. */
198
199 #ifndef ENABLE_CHECKING
200 # define eassert(cond) ((void) (false && (cond))) /* Check COND compiles. */
201 # define eassume(cond) assume (cond)
202 #else /* ENABLE_CHECKING */
203
204 extern _Noreturn void die (const char *, const char *, int);
205
206 extern bool suppress_checking EXTERNALLY_VISIBLE;
207
208 # define eassert(cond) \
209 (suppress_checking || (cond) \
210 ? (void) 0 \
211 : die (# cond, __FILE__, __LINE__))
212 # define eassume(cond) \
213 (suppress_checking \
214 ? assume (cond) \
215 : (cond) \
216 ? (void) 0 \
217 : die (# cond, __FILE__, __LINE__))
218 #endif /* ENABLE_CHECKING */
219
220 \f
221 /* Use the configure flag --enable-check-lisp-object-type to make
222 Lisp_Object use a struct type instead of the default int. The flag
223 causes CHECK_LISP_OBJECT_TYPE to be defined. */
224
225 /***** Select the tagging scheme. *****/
226 /* The following option controls the tagging scheme:
227 - USE_LSB_TAG means that we can assume the least 3 bits of pointers are
228 always 0, and we can thus use them to hold tag bits, without
229 restricting our addressing space.
230
231 If ! USE_LSB_TAG, then use the top 3 bits for tagging, thus
232 restricting our possible address range.
233
234 USE_LSB_TAG not only requires the least 3 bits of pointers returned by
235 malloc to be 0 but also needs to be able to impose a mult-of-8 alignment
236 on the few static Lisp_Objects used: lispsym, all the defsubr, and
237 the two special buffers buffer_defaults and buffer_local_symbols. */
238
239 enum Lisp_Bits
240 {
241 /* 2**GCTYPEBITS. This must be a macro that expands to a literal
242 integer constant, for MSVC. */
243 #define GCALIGNMENT 8
244
245 /* Number of bits in a Lisp_Object value, not counting the tag. */
246 VALBITS = BITS_PER_EMACS_INT - GCTYPEBITS,
247
248 /* Number of bits in a Lisp fixnum tag. */
249 INTTYPEBITS = GCTYPEBITS - 1,
250
251 /* Number of bits in a Lisp fixnum value, not counting the tag. */
252 FIXNUM_BITS = VALBITS + 1
253 };
254
255 #if GCALIGNMENT != 1 << GCTYPEBITS
256 # error "GCALIGNMENT and GCTYPEBITS are inconsistent"
257 #endif
258
259 /* The maximum value that can be stored in a EMACS_INT, assuming all
260 bits other than the type bits contribute to a nonnegative signed value.
261 This can be used in #if, e.g., '#if USE_LSB_TAG' below expands to an
262 expression involving VAL_MAX. */
263 #define VAL_MAX (EMACS_INT_MAX >> (GCTYPEBITS - 1))
264
265 /* Whether the least-significant bits of an EMACS_INT contain the tag.
266 On hosts where pointers-as-ints do not exceed VAL_MAX / 2, USE_LSB_TAG is:
267 a. unnecessary, because the top bits of an EMACS_INT are unused, and
268 b. slower, because it typically requires extra masking.
269 So, USE_LSB_TAG is true only on hosts where it might be useful. */
270 DEFINE_GDB_SYMBOL_BEGIN (bool, USE_LSB_TAG)
271 #define USE_LSB_TAG (VAL_MAX / 2 < INTPTR_MAX)
272 DEFINE_GDB_SYMBOL_END (USE_LSB_TAG)
273
274 #if !USE_LSB_TAG && !defined WIDE_EMACS_INT
275 # error "USE_LSB_TAG not supported on this platform; please report this." \
276 "Try 'configure --with-wide-int' to work around the problem."
277 error !;
278 #endif
279
280 #ifndef alignas
281 # error "alignas not defined"
282 #endif
283
284 #ifdef HAVE_STRUCT_ATTRIBUTE_ALIGNED
285 # define GCALIGNED __attribute__ ((aligned (GCALIGNMENT)))
286 #else
287 # define GCALIGNED /* empty */
288 #endif
289
290 /* Some operations are so commonly executed that they are implemented
291 as macros, not functions, because otherwise runtime performance would
292 suffer too much when compiling with GCC without optimization.
293 There's no need to inline everything, just the operations that
294 would otherwise cause a serious performance problem.
295
296 For each such operation OP, define a macro lisp_h_OP that contains
297 the operation's implementation. That way, OP can be implemented
298 via a macro definition like this:
299
300 #define OP(x) lisp_h_OP (x)
301
302 and/or via a function definition like this:
303
304 Lisp_Object (OP) (Lisp_Object x) { return lisp_h_OP (x); }
305
306 without worrying about the implementations diverging, since
307 lisp_h_OP defines the actual implementation. The lisp_h_OP macros
308 are intended to be private to this include file, and should not be
309 used elsewhere.
310
311 FIXME: Remove the lisp_h_OP macros, and define just the inline OP
312 functions, once most developers have access to GCC 4.8 or later and
313 can use "gcc -Og" to debug. Maybe in the year 2016. See
314 Bug#11935.
315
316 Commentary for these macros can be found near their corresponding
317 functions, below. */
318
319 #if CHECK_LISP_OBJECT_TYPE
320 # define lisp_h_XLI(o) ((o).i)
321 # define lisp_h_XIL(i) ((Lisp_Object) { i })
322 #else
323 # define lisp_h_XLI(o) (o)
324 # define lisp_h_XIL(i) (i)
325 #endif
326 #define lisp_h_CHECK_LIST_CONS(x, y) CHECK_TYPE (CONSP (x), Qlistp, y)
327 #define lisp_h_CHECK_NUMBER(x) CHECK_TYPE (INTEGERP (x), Qintegerp, x)
328 #define lisp_h_CHECK_SYMBOL(x) CHECK_TYPE (SYMBOLP (x), Qsymbolp, x)
329 #define lisp_h_CHECK_TYPE(ok, predicate, x) \
330 ((ok) ? (void) 0 : (void) wrong_type_argument (predicate, x))
331 #define lisp_h_CONSP(x) (XTYPE (x) == Lisp_Cons)
332 /* lisp_h_EQ must never exit non-locally; emacs-module.c relies on
333 that. */
334 #define lisp_h_EQ(x, y) (XLI (x) == XLI (y))
335 #define lisp_h_FLOATP(x) (XTYPE (x) == Lisp_Float)
336 #define lisp_h_INTEGERP(x) ((XTYPE (x) & (Lisp_Int0 | ~Lisp_Int1)) == Lisp_Int0)
337 #define lisp_h_MARKERP(x) (MISCP (x) && XMISCTYPE (x) == Lisp_Misc_Marker)
338 #define lisp_h_MISCP(x) (XTYPE (x) == Lisp_Misc)
339 /* lisp_h_NILP must never exit non-locally; emacs-module.c relies on
340 that. */
341 #define lisp_h_NILP(x) EQ (x, Qnil)
342 #define lisp_h_SET_SYMBOL_VAL(sym, v) \
343 (eassert ((sym)->redirect == SYMBOL_PLAINVAL), (sym)->val.value = (v))
344 #define lisp_h_SYMBOL_CONSTANT_P(sym) (XSYMBOL (sym)->constant)
345 #define lisp_h_SYMBOL_VAL(sym) \
346 (eassert ((sym)->redirect == SYMBOL_PLAINVAL), (sym)->val.value)
347 #define lisp_h_SYMBOLP(x) (XTYPE (x) == Lisp_Symbol)
348 #define lisp_h_VECTORLIKEP(x) (XTYPE (x) == Lisp_Vectorlike)
349 #define lisp_h_XCAR(c) XCONS (c)->car
350 #define lisp_h_XCDR(c) XCONS (c)->u.cdr
351 #define lisp_h_XCONS(a) \
352 (eassert (CONSP (a)), (struct Lisp_Cons *) XUNTAG (a, Lisp_Cons))
353 #define lisp_h_XHASH(a) XUINT (a)
354 #ifndef GC_CHECK_CONS_LIST
355 # define lisp_h_check_cons_list() ((void) 0)
356 #endif
357 #if USE_LSB_TAG
358 # define lisp_h_make_number(n) \
359 XIL ((EMACS_INT) (((EMACS_UINT) (n) << INTTYPEBITS) + Lisp_Int0))
360 # define lisp_h_XFASTINT(a) XINT (a)
361 # define lisp_h_XINT(a) (XLI (a) >> INTTYPEBITS)
362 # define lisp_h_XSYMBOL(a) \
363 (eassert (SYMBOLP (a)), \
364 (struct Lisp_Symbol *) ((intptr_t) XLI (a) - Lisp_Symbol \
365 + (char *) lispsym))
366 # define lisp_h_XTYPE(a) ((enum Lisp_Type) (XLI (a) & ~VALMASK))
367 # define lisp_h_XUNTAG(a, type) ((void *) (intptr_t) (XLI (a) - (type)))
368 #endif
369
370 /* When compiling via gcc -O0, define the key operations as macros, as
371 Emacs is too slow otherwise. To disable this optimization, compile
372 with -DINLINING=false. */
373 #if (defined __NO_INLINE__ \
374 && ! defined __OPTIMIZE__ && ! defined __OPTIMIZE_SIZE__ \
375 && ! (defined INLINING && ! INLINING))
376 # define DEFINE_KEY_OPS_AS_MACROS true
377 #else
378 # define DEFINE_KEY_OPS_AS_MACROS false
379 #endif
380
381 #if DEFINE_KEY_OPS_AS_MACROS
382 # define XLI(o) lisp_h_XLI (o)
383 # define XIL(i) lisp_h_XIL (i)
384 # define CHECK_LIST_CONS(x, y) lisp_h_CHECK_LIST_CONS (x, y)
385 # define CHECK_NUMBER(x) lisp_h_CHECK_NUMBER (x)
386 # define CHECK_SYMBOL(x) lisp_h_CHECK_SYMBOL (x)
387 # define CHECK_TYPE(ok, predicate, x) lisp_h_CHECK_TYPE (ok, predicate, x)
388 # define CONSP(x) lisp_h_CONSP (x)
389 /* EQ must never exit non-locally; emacs-module.c relies on that. */
390 # define EQ(x, y) lisp_h_EQ (x, y)
391 # define FLOATP(x) lisp_h_FLOATP (x)
392 # define INTEGERP(x) lisp_h_INTEGERP (x)
393 # define MARKERP(x) lisp_h_MARKERP (x)
394 # define MISCP(x) lisp_h_MISCP (x)
395 /* NILP must never exit non-locally; emacs-module.c relies on
396 that. */
397 # define NILP(x) lisp_h_NILP (x)
398 # define SET_SYMBOL_VAL(sym, v) lisp_h_SET_SYMBOL_VAL (sym, v)
399 # define SYMBOL_CONSTANT_P(sym) lisp_h_SYMBOL_CONSTANT_P (sym)
400 # define SYMBOL_VAL(sym) lisp_h_SYMBOL_VAL (sym)
401 # define SYMBOLP(x) lisp_h_SYMBOLP (x)
402 # define VECTORLIKEP(x) lisp_h_VECTORLIKEP (x)
403 # define XCAR(c) lisp_h_XCAR (c)
404 # define XCDR(c) lisp_h_XCDR (c)
405 # define XCONS(a) lisp_h_XCONS (a)
406 # define XHASH(a) lisp_h_XHASH (a)
407 # ifndef GC_CHECK_CONS_LIST
408 # define check_cons_list() lisp_h_check_cons_list ()
409 # endif
410 # if USE_LSB_TAG
411 # define make_number(n) lisp_h_make_number (n)
412 # define XFASTINT(a) lisp_h_XFASTINT (a)
413 # define XINT(a) lisp_h_XINT (a)
414 # define XSYMBOL(a) lisp_h_XSYMBOL (a)
415 # define XTYPE(a) lisp_h_XTYPE (a)
416 # define XUNTAG(a, type) lisp_h_XUNTAG (a, type)
417 # endif
418 #endif
419
420
421 /* Define the fundamental Lisp data structures. */
422
423 /* This is the set of Lisp data types. If you want to define a new
424 data type, read the comments after Lisp_Fwd_Type definition
425 below. */
426
427 /* Lisp integers use 2 tags, to give them one extra bit, thus
428 extending their range from, e.g., -2^28..2^28-1 to -2^29..2^29-1. */
429 #define INTMASK (EMACS_INT_MAX >> (INTTYPEBITS - 1))
430 #define case_Lisp_Int case Lisp_Int0: case Lisp_Int1
431
432 /* Idea stolen from GDB. Pedantic GCC complains about enum bitfields,
433 MSVC doesn't support them, and xlc and Oracle Studio c99 complain
434 vociferously about them. */
435 #if (defined __STRICT_ANSI__ || defined _MSC_VER || defined __IBMC__ \
436 || (defined __SUNPRO_C && __STDC__))
437 #define ENUM_BF(TYPE) unsigned int
438 #else
439 #define ENUM_BF(TYPE) enum TYPE
440 #endif
441
442
443 enum Lisp_Type
444 {
445 /* Symbol. XSYMBOL (object) points to a struct Lisp_Symbol. */
446 Lisp_Symbol = 0,
447
448 /* Miscellaneous. XMISC (object) points to a union Lisp_Misc,
449 whose first member indicates the subtype. */
450 Lisp_Misc = 1,
451
452 /* Integer. XINT (obj) is the integer value. */
453 Lisp_Int0 = 2,
454 Lisp_Int1 = USE_LSB_TAG ? 6 : 3,
455
456 /* String. XSTRING (object) points to a struct Lisp_String.
457 The length of the string, and its contents, are stored therein. */
458 Lisp_String = 4,
459
460 /* Vector of Lisp objects, or something resembling it.
461 XVECTOR (object) points to a struct Lisp_Vector, which contains
462 the size and contents. The size field also contains the type
463 information, if it's not a real vector object. */
464 Lisp_Vectorlike = 5,
465
466 /* Cons. XCONS (object) points to a struct Lisp_Cons. */
467 Lisp_Cons = USE_LSB_TAG ? 3 : 6,
468
469 Lisp_Float = 7
470 };
471
472 /* This is the set of data types that share a common structure.
473 The first member of the structure is a type code from this set.
474 The enum values are arbitrary, but we'll use large numbers to make it
475 more likely that we'll spot the error if a random word in memory is
476 mistakenly interpreted as a Lisp_Misc. */
477 enum Lisp_Misc_Type
478 {
479 Lisp_Misc_Free = 0x5eab,
480 Lisp_Misc_Marker,
481 Lisp_Misc_Overlay,
482 Lisp_Misc_Save_Value,
483 Lisp_Misc_Finalizer,
484 #ifdef HAVE_MODULES
485 Lisp_Misc_User_Ptr,
486 #endif
487 /* Currently floats are not a misc type,
488 but let's define this in case we want to change that. */
489 Lisp_Misc_Float,
490 /* This is not a type code. It is for range checking. */
491 Lisp_Misc_Limit
492 };
493
494 /* These are the types of forwarding objects used in the value slot
495 of symbols for special built-in variables whose value is stored in
496 C variables. */
497 enum Lisp_Fwd_Type
498 {
499 Lisp_Fwd_Int, /* Fwd to a C `int' variable. */
500 Lisp_Fwd_Bool, /* Fwd to a C boolean var. */
501 Lisp_Fwd_Obj, /* Fwd to a C Lisp_Object variable. */
502 Lisp_Fwd_Buffer_Obj, /* Fwd to a Lisp_Object field of buffers. */
503 Lisp_Fwd_Kboard_Obj /* Fwd to a Lisp_Object field of kboards. */
504 };
505
506 /* If you want to define a new Lisp data type, here are some
507 instructions. See the thread at
508 http://lists.gnu.org/archive/html/emacs-devel/2012-10/msg00561.html
509 for more info.
510
511 First, there are already a couple of Lisp types that can be used if
512 your new type does not need to be exposed to Lisp programs nor
513 displayed to users. These are Lisp_Save_Value, a Lisp_Misc
514 subtype; and PVEC_OTHER, a kind of vectorlike object. The former
515 is suitable for temporarily stashing away pointers and integers in
516 a Lisp object. The latter is useful for vector-like Lisp objects
517 that need to be used as part of other objects, but which are never
518 shown to users or Lisp code (search for PVEC_OTHER in xterm.c for
519 an example).
520
521 These two types don't look pretty when printed, so they are
522 unsuitable for Lisp objects that can be exposed to users.
523
524 To define a new data type, add one more Lisp_Misc subtype or one
525 more pseudovector subtype. Pseudovectors are more suitable for
526 objects with several slots that need to support fast random access,
527 while Lisp_Misc types are for everything else. A pseudovector object
528 provides one or more slots for Lisp objects, followed by struct
529 members that are accessible only from C. A Lisp_Misc object is a
530 wrapper for a C struct that can contain anything you like.
531
532 Explicit freeing is discouraged for Lisp objects in general. But if
533 you really need to exploit this, use Lisp_Misc (check free_misc in
534 alloc.c to see why). There is no way to free a vectorlike object.
535
536 To add a new pseudovector type, extend the pvec_type enumeration;
537 to add a new Lisp_Misc, extend the Lisp_Misc_Type enumeration.
538
539 For a Lisp_Misc, you will also need to add your entry to union
540 Lisp_Misc (but make sure the first word has the same structure as
541 the others, starting with a 16-bit member of the Lisp_Misc_Type
542 enumeration and a 1-bit GC markbit) and make sure the overall size
543 of the union is not increased by your addition.
544
545 For a new pseudovector, it's highly desirable to limit the size
546 of your data type by VBLOCK_BYTES_MAX bytes (defined in alloc.c).
547 Otherwise you will need to change sweep_vectors (also in alloc.c).
548
549 Then you will need to add switch branches in print.c (in
550 print_object, to print your object, and possibly also in
551 print_preprocess) and to alloc.c, to mark your object (in
552 mark_object) and to free it (in gc_sweep). The latter is also the
553 right place to call any code specific to your data type that needs
554 to run when the object is recycled -- e.g., free any additional
555 resources allocated for it that are not Lisp objects. You can even
556 make a pointer to the function that frees the resources a slot in
557 your object -- this way, the same object could be used to represent
558 several disparate C structures. */
559
560 #ifdef CHECK_LISP_OBJECT_TYPE
561
562 typedef struct { EMACS_INT i; } Lisp_Object;
563
564 #define LISP_INITIALLY(i) {i}
565
566 #undef CHECK_LISP_OBJECT_TYPE
567 enum CHECK_LISP_OBJECT_TYPE { CHECK_LISP_OBJECT_TYPE = true };
568 #else /* CHECK_LISP_OBJECT_TYPE */
569
570 /* If a struct type is not wanted, define Lisp_Object as just a number. */
571
572 typedef EMACS_INT Lisp_Object;
573 #define LISP_INITIALLY(i) (i)
574 enum CHECK_LISP_OBJECT_TYPE { CHECK_LISP_OBJECT_TYPE = false };
575 #endif /* CHECK_LISP_OBJECT_TYPE */
576
577 #define LISP_INITIALLY_ZERO LISP_INITIALLY (0)
578 \f
579 /* Forward declarations. */
580
581 /* Defined in this file. */
582 union Lisp_Fwd;
583 INLINE bool BOOL_VECTOR_P (Lisp_Object);
584 INLINE bool BUFFER_OBJFWDP (union Lisp_Fwd *);
585 INLINE bool BUFFERP (Lisp_Object);
586 INLINE bool CHAR_TABLE_P (Lisp_Object);
587 INLINE Lisp_Object CHAR_TABLE_REF_ASCII (Lisp_Object, ptrdiff_t);
588 INLINE bool (CONSP) (Lisp_Object);
589 INLINE bool (FLOATP) (Lisp_Object);
590 INLINE bool functionp (Lisp_Object);
591 INLINE bool (INTEGERP) (Lisp_Object);
592 INLINE bool (MARKERP) (Lisp_Object);
593 INLINE bool (MISCP) (Lisp_Object);
594 INLINE bool (NILP) (Lisp_Object);
595 INLINE bool OVERLAYP (Lisp_Object);
596 INLINE bool PROCESSP (Lisp_Object);
597 INLINE bool PSEUDOVECTORP (Lisp_Object, int);
598 INLINE bool SAVE_VALUEP (Lisp_Object);
599 INLINE bool FINALIZERP (Lisp_Object);
600
601 #ifdef HAVE_MODULES
602 INLINE bool USER_PTRP (Lisp_Object);
603 INLINE struct Lisp_User_Ptr *(XUSER_PTR) (Lisp_Object);
604 #endif
605
606 INLINE void set_sub_char_table_contents (Lisp_Object, ptrdiff_t,
607 Lisp_Object);
608 INLINE bool STRINGP (Lisp_Object);
609 INLINE bool SUB_CHAR_TABLE_P (Lisp_Object);
610 INLINE bool SUBRP (Lisp_Object);
611 INLINE bool (SYMBOLP) (Lisp_Object);
612 INLINE bool (VECTORLIKEP) (Lisp_Object);
613 INLINE bool WINDOWP (Lisp_Object);
614 INLINE bool TERMINALP (Lisp_Object);
615 INLINE struct Lisp_Save_Value *XSAVE_VALUE (Lisp_Object);
616 INLINE struct Lisp_Finalizer *XFINALIZER (Lisp_Object);
617 INLINE struct Lisp_Symbol *(XSYMBOL) (Lisp_Object);
618 INLINE void *(XUNTAG) (Lisp_Object, int);
619
620 /* Defined in chartab.c. */
621 extern Lisp_Object char_table_ref (Lisp_Object, int);
622 extern void char_table_set (Lisp_Object, int, Lisp_Object);
623
624 /* Defined in data.c. */
625 extern _Noreturn Lisp_Object wrong_type_argument (Lisp_Object, Lisp_Object);
626 extern _Noreturn void wrong_choice (Lisp_Object, Lisp_Object);
627
628 /* Defined in emacs.c. */
629 extern bool might_dump;
630 /* True means Emacs has already been initialized.
631 Used during startup to detect startup of dumped Emacs. */
632 extern bool initialized;
633
634 /* Defined in floatfns.c. */
635 extern double extract_float (Lisp_Object);
636
637 \f
638 /* Interned state of a symbol. */
639
640 enum symbol_interned
641 {
642 SYMBOL_UNINTERNED = 0,
643 SYMBOL_INTERNED = 1,
644 SYMBOL_INTERNED_IN_INITIAL_OBARRAY = 2
645 };
646
647 enum symbol_redirect
648 {
649 SYMBOL_PLAINVAL = 4,
650 SYMBOL_VARALIAS = 1,
651 SYMBOL_LOCALIZED = 2,
652 SYMBOL_FORWARDED = 3
653 };
654
655 struct Lisp_Symbol
656 {
657 bool_bf gcmarkbit : 1;
658
659 /* Indicates where the value can be found:
660 0 : it's a plain var, the value is in the `value' field.
661 1 : it's a varalias, the value is really in the `alias' symbol.
662 2 : it's a localized var, the value is in the `blv' object.
663 3 : it's a forwarding variable, the value is in `forward'. */
664 ENUM_BF (symbol_redirect) redirect : 3;
665
666 /* Non-zero means symbol is constant, i.e. changing its value
667 should signal an error. If the value is 3, then the var
668 can be changed, but only by `defconst'. */
669 unsigned constant : 2;
670
671 /* Interned state of the symbol. This is an enumerator from
672 enum symbol_interned. */
673 unsigned interned : 2;
674
675 /* True means that this variable has been explicitly declared
676 special (with `defvar' etc), and shouldn't be lexically bound. */
677 bool_bf declared_special : 1;
678
679 /* True if pointed to from purespace and hence can't be GC'd. */
680 bool_bf pinned : 1;
681
682 /* The symbol's name, as a Lisp string. */
683 Lisp_Object name;
684
685 /* Value of the symbol or Qunbound if unbound. Which alternative of the
686 union is used depends on the `redirect' field above. */
687 union {
688 Lisp_Object value;
689 struct Lisp_Symbol *alias;
690 struct Lisp_Buffer_Local_Value *blv;
691 union Lisp_Fwd *fwd;
692 } val;
693
694 /* Function value of the symbol or Qnil if not fboundp. */
695 Lisp_Object function;
696
697 /* The symbol's property list. */
698 Lisp_Object plist;
699
700 /* Next symbol in obarray bucket, if the symbol is interned. */
701 struct Lisp_Symbol *next;
702 };
703
704 /* Declare a Lisp-callable function. The MAXARGS parameter has the same
705 meaning as in the DEFUN macro, and is used to construct a prototype. */
706 /* We can use the same trick as in the DEFUN macro to generate the
707 appropriate prototype. */
708 #define EXFUN(fnname, maxargs) \
709 extern Lisp_Object fnname DEFUN_ARGS_ ## maxargs
710
711 /* Note that the weird token-substitution semantics of ANSI C makes
712 this work for MANY and UNEVALLED. */
713 #define DEFUN_ARGS_MANY (ptrdiff_t, Lisp_Object *)
714 #define DEFUN_ARGS_UNEVALLED (Lisp_Object)
715 #define DEFUN_ARGS_0 (void)
716 #define DEFUN_ARGS_1 (Lisp_Object)
717 #define DEFUN_ARGS_2 (Lisp_Object, Lisp_Object)
718 #define DEFUN_ARGS_3 (Lisp_Object, Lisp_Object, Lisp_Object)
719 #define DEFUN_ARGS_4 (Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object)
720 #define DEFUN_ARGS_5 (Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object, \
721 Lisp_Object)
722 #define DEFUN_ARGS_6 (Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object, \
723 Lisp_Object, Lisp_Object)
724 #define DEFUN_ARGS_7 (Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object, \
725 Lisp_Object, Lisp_Object, Lisp_Object)
726 #define DEFUN_ARGS_8 (Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object, \
727 Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object)
728
729 /* Yield a signed integer that contains TAG along with PTR.
730
731 Sign-extend pointers when USE_LSB_TAG (this simplifies emacs-module.c),
732 and zero-extend otherwise (that’s a bit faster here).
733 Sign extension matters only when EMACS_INT is wider than a pointer. */
734 #define TAG_PTR(tag, ptr) \
735 (USE_LSB_TAG \
736 ? (intptr_t) (ptr) + (tag) \
737 : (EMACS_INT) (((EMACS_UINT) (tag) << VALBITS) + (uintptr_t) (ptr)))
738
739 /* Yield an integer that contains a symbol tag along with OFFSET.
740 OFFSET should be the offset in bytes from 'lispsym' to the symbol. */
741 #define TAG_SYMOFFSET(offset) TAG_PTR (Lisp_Symbol, offset)
742
743 /* XLI_BUILTIN_LISPSYM (iQwhatever) is equivalent to
744 XLI (builtin_lisp_symbol (Qwhatever)),
745 except the former expands to an integer constant expression. */
746 #define XLI_BUILTIN_LISPSYM(iname) TAG_SYMOFFSET ((iname) * sizeof *lispsym)
747
748 /* Declare extern constants for Lisp symbols. These can be helpful
749 when using a debugger like GDB, on older platforms where the debug
750 format does not represent C macros. */
751 #define DEFINE_LISP_SYMBOL(name) \
752 DEFINE_GDB_SYMBOL_BEGIN (Lisp_Object, name) \
753 DEFINE_GDB_SYMBOL_END (LISP_INITIALLY (XLI_BUILTIN_LISPSYM (i##name)))
754
755 /* By default, define macros for Qt, etc., as this leads to a bit
756 better performance in the core Emacs interpreter. A plugin can
757 define DEFINE_NON_NIL_Q_SYMBOL_MACROS to be false, to be portable to
758 other Emacs instances that assign different values to Qt, etc. */
759 #ifndef DEFINE_NON_NIL_Q_SYMBOL_MACROS
760 # define DEFINE_NON_NIL_Q_SYMBOL_MACROS true
761 #endif
762
763 #include "globals.h"
764
765 /* Convert a Lisp_Object to the corresponding EMACS_INT and vice versa.
766 At the machine level, these operations are no-ops. */
767
768 INLINE EMACS_INT
769 (XLI) (Lisp_Object o)
770 {
771 return lisp_h_XLI (o);
772 }
773
774 INLINE Lisp_Object
775 (XIL) (EMACS_INT i)
776 {
777 return lisp_h_XIL (i);
778 }
779
780 /* In the size word of a vector, this bit means the vector has been marked. */
781
782 DEFINE_GDB_SYMBOL_BEGIN (ptrdiff_t, ARRAY_MARK_FLAG)
783 # define ARRAY_MARK_FLAG PTRDIFF_MIN
784 DEFINE_GDB_SYMBOL_END (ARRAY_MARK_FLAG)
785
786 /* In the size word of a struct Lisp_Vector, this bit means it's really
787 some other vector-like object. */
788 DEFINE_GDB_SYMBOL_BEGIN (ptrdiff_t, PSEUDOVECTOR_FLAG)
789 # define PSEUDOVECTOR_FLAG (PTRDIFF_MAX - PTRDIFF_MAX / 2)
790 DEFINE_GDB_SYMBOL_END (PSEUDOVECTOR_FLAG)
791
792 /* In a pseudovector, the size field actually contains a word with one
793 PSEUDOVECTOR_FLAG bit set, and one of the following values extracted
794 with PVEC_TYPE_MASK to indicate the actual type. */
795 enum pvec_type
796 {
797 PVEC_NORMAL_VECTOR,
798 PVEC_FREE,
799 PVEC_PROCESS,
800 PVEC_FRAME,
801 PVEC_WINDOW,
802 PVEC_BOOL_VECTOR,
803 PVEC_BUFFER,
804 PVEC_HASH_TABLE,
805 PVEC_TERMINAL,
806 PVEC_WINDOW_CONFIGURATION,
807 PVEC_SUBR,
808 PVEC_OTHER,
809 /* These should be last, check internal_equal to see why. */
810 PVEC_COMPILED,
811 PVEC_CHAR_TABLE,
812 PVEC_SUB_CHAR_TABLE,
813 PVEC_FONT /* Should be last because it's used for range checking. */
814 };
815
816 enum More_Lisp_Bits
817 {
818 /* For convenience, we also store the number of elements in these bits.
819 Note that this size is not necessarily the memory-footprint size, but
820 only the number of Lisp_Object fields (that need to be traced by GC).
821 The distinction is used, e.g., by Lisp_Process, which places extra
822 non-Lisp_Object fields at the end of the structure. */
823 PSEUDOVECTOR_SIZE_BITS = 12,
824 PSEUDOVECTOR_SIZE_MASK = (1 << PSEUDOVECTOR_SIZE_BITS) - 1,
825
826 /* To calculate the memory footprint of the pseudovector, it's useful
827 to store the size of non-Lisp area in word_size units here. */
828 PSEUDOVECTOR_REST_BITS = 12,
829 PSEUDOVECTOR_REST_MASK = (((1 << PSEUDOVECTOR_REST_BITS) - 1)
830 << PSEUDOVECTOR_SIZE_BITS),
831
832 /* Used to extract pseudovector subtype information. */
833 PSEUDOVECTOR_AREA_BITS = PSEUDOVECTOR_SIZE_BITS + PSEUDOVECTOR_REST_BITS,
834 PVEC_TYPE_MASK = 0x3f << PSEUDOVECTOR_AREA_BITS
835 };
836 \f
837 /* These functions extract various sorts of values from a Lisp_Object.
838 For example, if tem is a Lisp_Object whose type is Lisp_Cons,
839 XCONS (tem) is the struct Lisp_Cons * pointing to the memory for
840 that cons. */
841
842 /* Mask for the value (as opposed to the type bits) of a Lisp object. */
843 DEFINE_GDB_SYMBOL_BEGIN (EMACS_INT, VALMASK)
844 # define VALMASK (USE_LSB_TAG ? - (1 << GCTYPEBITS) : VAL_MAX)
845 DEFINE_GDB_SYMBOL_END (VALMASK)
846
847 /* Largest and smallest representable fixnum values. These are the C
848 values. They are macros for use in static initializers. */
849 #define MOST_POSITIVE_FIXNUM (EMACS_INT_MAX >> INTTYPEBITS)
850 #define MOST_NEGATIVE_FIXNUM (-1 - MOST_POSITIVE_FIXNUM)
851
852 #if USE_LSB_TAG
853
854 INLINE Lisp_Object
855 (make_number) (EMACS_INT n)
856 {
857 return lisp_h_make_number (n);
858 }
859
860 INLINE EMACS_INT
861 (XINT) (Lisp_Object a)
862 {
863 return lisp_h_XINT (a);
864 }
865
866 INLINE EMACS_INT
867 (XFASTINT) (Lisp_Object a)
868 {
869 EMACS_INT n = lisp_h_XFASTINT (a);
870 eassume (0 <= n);
871 return n;
872 }
873
874 INLINE struct Lisp_Symbol *
875 (XSYMBOL) (Lisp_Object a)
876 {
877 return lisp_h_XSYMBOL (a);
878 }
879
880 INLINE enum Lisp_Type
881 (XTYPE) (Lisp_Object a)
882 {
883 return lisp_h_XTYPE (a);
884 }
885
886 INLINE void *
887 (XUNTAG) (Lisp_Object a, int type)
888 {
889 return lisp_h_XUNTAG (a, type);
890 }
891
892 #else /* ! USE_LSB_TAG */
893
894 /* Although compiled only if ! USE_LSB_TAG, the following functions
895 also work when USE_LSB_TAG; this is to aid future maintenance when
896 the lisp_h_* macros are eventually removed. */
897
898 /* Make a Lisp integer representing the value of the low order
899 bits of N. */
900 INLINE Lisp_Object
901 make_number (EMACS_INT n)
902 {
903 EMACS_INT int0 = Lisp_Int0;
904 if (USE_LSB_TAG)
905 {
906 EMACS_UINT u = n;
907 n = u << INTTYPEBITS;
908 n += int0;
909 }
910 else
911 {
912 n &= INTMASK;
913 n += (int0 << VALBITS);
914 }
915 return XIL (n);
916 }
917
918 /* Extract A's value as a signed integer. */
919 INLINE EMACS_INT
920 XINT (Lisp_Object a)
921 {
922 EMACS_INT i = XLI (a);
923 if (! USE_LSB_TAG)
924 {
925 EMACS_UINT u = i;
926 i = u << INTTYPEBITS;
927 }
928 return i >> INTTYPEBITS;
929 }
930
931 /* Like XINT (A), but may be faster. A must be nonnegative.
932 If ! USE_LSB_TAG, this takes advantage of the fact that Lisp
933 integers have zero-bits in their tags. */
934 INLINE EMACS_INT
935 XFASTINT (Lisp_Object a)
936 {
937 EMACS_INT int0 = Lisp_Int0;
938 EMACS_INT n = USE_LSB_TAG ? XINT (a) : XLI (a) - (int0 << VALBITS);
939 eassume (0 <= n);
940 return n;
941 }
942
943 /* Extract A's type. */
944 INLINE enum Lisp_Type
945 XTYPE (Lisp_Object a)
946 {
947 EMACS_UINT i = XLI (a);
948 return USE_LSB_TAG ? i & ~VALMASK : i >> VALBITS;
949 }
950
951 /* Extract A's value as a symbol. */
952 INLINE struct Lisp_Symbol *
953 XSYMBOL (Lisp_Object a)
954 {
955 eassert (SYMBOLP (a));
956 intptr_t i = (intptr_t) XUNTAG (a, Lisp_Symbol);
957 void *p = (char *) lispsym + i;
958 return p;
959 }
960
961 /* Extract A's pointer value, assuming A's type is TYPE. */
962 INLINE void *
963 XUNTAG (Lisp_Object a, int type)
964 {
965 intptr_t i = USE_LSB_TAG ? XLI (a) - type : XLI (a) & VALMASK;
966 return (void *) i;
967 }
968
969 #endif /* ! USE_LSB_TAG */
970
971 /* Extract A's value as an unsigned integer. */
972 INLINE EMACS_UINT
973 XUINT (Lisp_Object a)
974 {
975 EMACS_UINT i = XLI (a);
976 return USE_LSB_TAG ? i >> INTTYPEBITS : i & INTMASK;
977 }
978
979 /* Return A's (Lisp-integer sized) hash. Happens to be like XUINT
980 right now, but XUINT should only be applied to objects we know are
981 integers. */
982
983 INLINE EMACS_INT
984 (XHASH) (Lisp_Object a)
985 {
986 return lisp_h_XHASH (a);
987 }
988
989 /* Like make_number (N), but may be faster. N must be in nonnegative range. */
990 INLINE Lisp_Object
991 make_natnum (EMACS_INT n)
992 {
993 eassert (0 <= n && n <= MOST_POSITIVE_FIXNUM);
994 EMACS_INT int0 = Lisp_Int0;
995 return USE_LSB_TAG ? make_number (n) : XIL (n + (int0 << VALBITS));
996 }
997
998 /* Return true if X and Y are the same object. Must never exit
999 non-locally; emacs-module.c relies on that. */
1000
1001 INLINE bool
1002 (EQ) (Lisp_Object x, Lisp_Object y)
1003 {
1004 return lisp_h_EQ (x, y);
1005 }
1006
1007 /* Value is true if I doesn't fit into a Lisp fixnum. It is
1008 written this way so that it also works if I is of unsigned
1009 type or if I is a NaN. */
1010
1011 #define FIXNUM_OVERFLOW_P(i) \
1012 (! ((0 <= (i) || MOST_NEGATIVE_FIXNUM <= (i)) && (i) <= MOST_POSITIVE_FIXNUM))
1013
1014 INLINE ptrdiff_t
1015 clip_to_bounds (ptrdiff_t lower, EMACS_INT num, ptrdiff_t upper)
1016 {
1017 return num < lower ? lower : num <= upper ? num : upper;
1018 }
1019 \f
1020
1021 /* Extract a value or address from a Lisp_Object. */
1022
1023 INLINE struct Lisp_Cons *
1024 (XCONS) (Lisp_Object a)
1025 {
1026 return lisp_h_XCONS (a);
1027 }
1028
1029 INLINE struct Lisp_Vector *
1030 XVECTOR (Lisp_Object a)
1031 {
1032 eassert (VECTORLIKEP (a));
1033 return XUNTAG (a, Lisp_Vectorlike);
1034 }
1035
1036 INLINE struct Lisp_String *
1037 XSTRING (Lisp_Object a)
1038 {
1039 eassert (STRINGP (a));
1040 return XUNTAG (a, Lisp_String);
1041 }
1042
1043 /* The index of the C-defined Lisp symbol SYM.
1044 This can be used in a static initializer. */
1045 #define SYMBOL_INDEX(sym) i##sym
1046
1047 INLINE struct Lisp_Float *
1048 XFLOAT (Lisp_Object a)
1049 {
1050 eassert (FLOATP (a));
1051 return XUNTAG (a, Lisp_Float);
1052 }
1053
1054 /* Pseudovector types. */
1055
1056 INLINE struct Lisp_Process *
1057 XPROCESS (Lisp_Object a)
1058 {
1059 eassert (PROCESSP (a));
1060 return XUNTAG (a, Lisp_Vectorlike);
1061 }
1062
1063 INLINE struct window *
1064 XWINDOW (Lisp_Object a)
1065 {
1066 eassert (WINDOWP (a));
1067 return XUNTAG (a, Lisp_Vectorlike);
1068 }
1069
1070 INLINE struct terminal *
1071 XTERMINAL (Lisp_Object a)
1072 {
1073 eassert (TERMINALP (a));
1074 return XUNTAG (a, Lisp_Vectorlike);
1075 }
1076
1077 INLINE struct Lisp_Subr *
1078 XSUBR (Lisp_Object a)
1079 {
1080 eassert (SUBRP (a));
1081 return XUNTAG (a, Lisp_Vectorlike);
1082 }
1083
1084 INLINE struct buffer *
1085 XBUFFER (Lisp_Object a)
1086 {
1087 eassert (BUFFERP (a));
1088 return XUNTAG (a, Lisp_Vectorlike);
1089 }
1090
1091 INLINE struct Lisp_Char_Table *
1092 XCHAR_TABLE (Lisp_Object a)
1093 {
1094 eassert (CHAR_TABLE_P (a));
1095 return XUNTAG (a, Lisp_Vectorlike);
1096 }
1097
1098 INLINE struct Lisp_Sub_Char_Table *
1099 XSUB_CHAR_TABLE (Lisp_Object a)
1100 {
1101 eassert (SUB_CHAR_TABLE_P (a));
1102 return XUNTAG (a, Lisp_Vectorlike);
1103 }
1104
1105 INLINE struct Lisp_Bool_Vector *
1106 XBOOL_VECTOR (Lisp_Object a)
1107 {
1108 eassert (BOOL_VECTOR_P (a));
1109 return XUNTAG (a, Lisp_Vectorlike);
1110 }
1111
1112 /* Construct a Lisp_Object from a value or address. */
1113
1114 INLINE Lisp_Object
1115 make_lisp_ptr (void *ptr, enum Lisp_Type type)
1116 {
1117 Lisp_Object a = XIL (TAG_PTR (type, ptr));
1118 eassert (XTYPE (a) == type && XUNTAG (a, type) == ptr);
1119 return a;
1120 }
1121
1122 INLINE Lisp_Object
1123 make_lisp_symbol (struct Lisp_Symbol *sym)
1124 {
1125 Lisp_Object a = XIL (TAG_SYMOFFSET ((char *) sym - (char *) lispsym));
1126 eassert (XSYMBOL (a) == sym);
1127 return a;
1128 }
1129
1130 INLINE Lisp_Object
1131 builtin_lisp_symbol (int index)
1132 {
1133 return make_lisp_symbol (lispsym + index);
1134 }
1135
1136 #define XSETINT(a, b) ((a) = make_number (b))
1137 #define XSETFASTINT(a, b) ((a) = make_natnum (b))
1138 #define XSETCONS(a, b) ((a) = make_lisp_ptr (b, Lisp_Cons))
1139 #define XSETVECTOR(a, b) ((a) = make_lisp_ptr (b, Lisp_Vectorlike))
1140 #define XSETSTRING(a, b) ((a) = make_lisp_ptr (b, Lisp_String))
1141 #define XSETSYMBOL(a, b) ((a) = make_lisp_symbol (b))
1142 #define XSETFLOAT(a, b) ((a) = make_lisp_ptr (b, Lisp_Float))
1143 #define XSETMISC(a, b) ((a) = make_lisp_ptr (b, Lisp_Misc))
1144
1145 /* Pseudovector types. */
1146
1147 #define XSETPVECTYPE(v, code) \
1148 ((v)->header.size |= PSEUDOVECTOR_FLAG | ((code) << PSEUDOVECTOR_AREA_BITS))
1149 #define XSETPVECTYPESIZE(v, code, lispsize, restsize) \
1150 ((v)->header.size = (PSEUDOVECTOR_FLAG \
1151 | ((code) << PSEUDOVECTOR_AREA_BITS) \
1152 | ((restsize) << PSEUDOVECTOR_SIZE_BITS) \
1153 | (lispsize)))
1154
1155 /* The cast to struct vectorlike_header * avoids aliasing issues. */
1156 #define XSETPSEUDOVECTOR(a, b, code) \
1157 XSETTYPED_PSEUDOVECTOR (a, b, \
1158 (((struct vectorlike_header *) \
1159 XUNTAG (a, Lisp_Vectorlike)) \
1160 ->size), \
1161 code)
1162 #define XSETTYPED_PSEUDOVECTOR(a, b, size, code) \
1163 (XSETVECTOR (a, b), \
1164 eassert ((size & (PSEUDOVECTOR_FLAG | PVEC_TYPE_MASK)) \
1165 == (PSEUDOVECTOR_FLAG | (code << PSEUDOVECTOR_AREA_BITS))))
1166
1167 #define XSETWINDOW_CONFIGURATION(a, b) \
1168 (XSETPSEUDOVECTOR (a, b, PVEC_WINDOW_CONFIGURATION))
1169 #define XSETPROCESS(a, b) (XSETPSEUDOVECTOR (a, b, PVEC_PROCESS))
1170 #define XSETWINDOW(a, b) (XSETPSEUDOVECTOR (a, b, PVEC_WINDOW))
1171 #define XSETTERMINAL(a, b) (XSETPSEUDOVECTOR (a, b, PVEC_TERMINAL))
1172 #define XSETSUBR(a, b) (XSETPSEUDOVECTOR (a, b, PVEC_SUBR))
1173 #define XSETCOMPILED(a, b) (XSETPSEUDOVECTOR (a, b, PVEC_COMPILED))
1174 #define XSETBUFFER(a, b) (XSETPSEUDOVECTOR (a, b, PVEC_BUFFER))
1175 #define XSETCHAR_TABLE(a, b) (XSETPSEUDOVECTOR (a, b, PVEC_CHAR_TABLE))
1176 #define XSETBOOL_VECTOR(a, b) (XSETPSEUDOVECTOR (a, b, PVEC_BOOL_VECTOR))
1177 #define XSETSUB_CHAR_TABLE(a, b) (XSETPSEUDOVECTOR (a, b, PVEC_SUB_CHAR_TABLE))
1178
1179 /* Efficiently convert a pointer to a Lisp object and back. The
1180 pointer is represented as a Lisp integer, so the garbage collector
1181 does not know about it. The pointer should not have both Lisp_Int1
1182 bits set, which makes this conversion inherently unportable. */
1183
1184 INLINE void *
1185 XINTPTR (Lisp_Object a)
1186 {
1187 return XUNTAG (a, Lisp_Int0);
1188 }
1189
1190 INLINE Lisp_Object
1191 make_pointer_integer (void *p)
1192 {
1193 Lisp_Object a = XIL (TAG_PTR (Lisp_Int0, p));
1194 eassert (INTEGERP (a) && XINTPTR (a) == p);
1195 return a;
1196 }
1197
1198 /* Type checking. */
1199
1200 INLINE void
1201 (CHECK_TYPE) (int ok, Lisp_Object predicate, Lisp_Object x)
1202 {
1203 lisp_h_CHECK_TYPE (ok, predicate, x);
1204 }
1205
1206 /* See the macros in intervals.h. */
1207
1208 typedef struct interval *INTERVAL;
1209
1210 struct GCALIGNED Lisp_Cons
1211 {
1212 /* Car of this cons cell. */
1213 Lisp_Object car;
1214
1215 union
1216 {
1217 /* Cdr of this cons cell. */
1218 Lisp_Object cdr;
1219
1220 /* Used to chain conses on a free list. */
1221 struct Lisp_Cons *chain;
1222 } u;
1223 };
1224
1225 /* Take the car or cdr of something known to be a cons cell. */
1226 /* The _addr functions shouldn't be used outside of the minimal set
1227 of code that has to know what a cons cell looks like. Other code not
1228 part of the basic lisp implementation should assume that the car and cdr
1229 fields are not accessible. (What if we want to switch to
1230 a copying collector someday? Cached cons cell field addresses may be
1231 invalidated at arbitrary points.) */
1232 INLINE Lisp_Object *
1233 xcar_addr (Lisp_Object c)
1234 {
1235 return &XCONS (c)->car;
1236 }
1237 INLINE Lisp_Object *
1238 xcdr_addr (Lisp_Object c)
1239 {
1240 return &XCONS (c)->u.cdr;
1241 }
1242
1243 /* Use these from normal code. */
1244
1245 INLINE Lisp_Object
1246 (XCAR) (Lisp_Object c)
1247 {
1248 return lisp_h_XCAR (c);
1249 }
1250
1251 INLINE Lisp_Object
1252 (XCDR) (Lisp_Object c)
1253 {
1254 return lisp_h_XCDR (c);
1255 }
1256
1257 /* Use these to set the fields of a cons cell.
1258
1259 Note that both arguments may refer to the same object, so 'n'
1260 should not be read after 'c' is first modified. */
1261 INLINE void
1262 XSETCAR (Lisp_Object c, Lisp_Object n)
1263 {
1264 *xcar_addr (c) = n;
1265 }
1266 INLINE void
1267 XSETCDR (Lisp_Object c, Lisp_Object n)
1268 {
1269 *xcdr_addr (c) = n;
1270 }
1271
1272 /* Take the car or cdr of something whose type is not known. */
1273 INLINE Lisp_Object
1274 CAR (Lisp_Object c)
1275 {
1276 return (CONSP (c) ? XCAR (c)
1277 : NILP (c) ? Qnil
1278 : wrong_type_argument (Qlistp, c));
1279 }
1280 INLINE Lisp_Object
1281 CDR (Lisp_Object c)
1282 {
1283 return (CONSP (c) ? XCDR (c)
1284 : NILP (c) ? Qnil
1285 : wrong_type_argument (Qlistp, c));
1286 }
1287
1288 /* Take the car or cdr of something whose type is not known. */
1289 INLINE Lisp_Object
1290 CAR_SAFE (Lisp_Object c)
1291 {
1292 return CONSP (c) ? XCAR (c) : Qnil;
1293 }
1294 INLINE Lisp_Object
1295 CDR_SAFE (Lisp_Object c)
1296 {
1297 return CONSP (c) ? XCDR (c) : Qnil;
1298 }
1299
1300 /* In a string or vector, the sign bit of the `size' is the gc mark bit. */
1301
1302 struct GCALIGNED Lisp_String
1303 {
1304 ptrdiff_t size;
1305 ptrdiff_t size_byte;
1306 INTERVAL intervals; /* Text properties in this string. */
1307 unsigned char *data;
1308 };
1309
1310 /* True if STR is a multibyte string. */
1311 INLINE bool
1312 STRING_MULTIBYTE (Lisp_Object str)
1313 {
1314 return 0 <= XSTRING (str)->size_byte;
1315 }
1316
1317 /* An upper bound on the number of bytes in a Lisp string, not
1318 counting the terminating null. This a tight enough bound to
1319 prevent integer overflow errors that would otherwise occur during
1320 string size calculations. A string cannot contain more bytes than
1321 a fixnum can represent, nor can it be so long that C pointer
1322 arithmetic stops working on the string plus its terminating null.
1323 Although the actual size limit (see STRING_BYTES_MAX in alloc.c)
1324 may be a bit smaller than STRING_BYTES_BOUND, calculating it here
1325 would expose alloc.c internal details that we'd rather keep
1326 private.
1327
1328 This is a macro for use in static initializers. The cast to
1329 ptrdiff_t ensures that the macro is signed. */
1330 #define STRING_BYTES_BOUND \
1331 ((ptrdiff_t) min (MOST_POSITIVE_FIXNUM, min (SIZE_MAX, PTRDIFF_MAX) - 1))
1332
1333 /* Mark STR as a unibyte string. */
1334 #define STRING_SET_UNIBYTE(STR) \
1335 do { \
1336 if (EQ (STR, empty_multibyte_string)) \
1337 (STR) = empty_unibyte_string; \
1338 else \
1339 XSTRING (STR)->size_byte = -1; \
1340 } while (false)
1341
1342 /* Mark STR as a multibyte string. Assure that STR contains only
1343 ASCII characters in advance. */
1344 #define STRING_SET_MULTIBYTE(STR) \
1345 do { \
1346 if (EQ (STR, empty_unibyte_string)) \
1347 (STR) = empty_multibyte_string; \
1348 else \
1349 XSTRING (STR)->size_byte = XSTRING (STR)->size; \
1350 } while (false)
1351
1352 /* Convenience functions for dealing with Lisp strings. */
1353
1354 INLINE unsigned char *
1355 SDATA (Lisp_Object string)
1356 {
1357 return XSTRING (string)->data;
1358 }
1359 INLINE char *
1360 SSDATA (Lisp_Object string)
1361 {
1362 /* Avoid "differ in sign" warnings. */
1363 return (char *) SDATA (string);
1364 }
1365 INLINE unsigned char
1366 SREF (Lisp_Object string, ptrdiff_t index)
1367 {
1368 return SDATA (string)[index];
1369 }
1370 INLINE void
1371 SSET (Lisp_Object string, ptrdiff_t index, unsigned char new)
1372 {
1373 SDATA (string)[index] = new;
1374 }
1375 INLINE ptrdiff_t
1376 SCHARS (Lisp_Object string)
1377 {
1378 return XSTRING (string)->size;
1379 }
1380
1381 #ifdef GC_CHECK_STRING_BYTES
1382 extern ptrdiff_t string_bytes (struct Lisp_String *);
1383 #endif
1384 INLINE ptrdiff_t
1385 STRING_BYTES (struct Lisp_String *s)
1386 {
1387 #ifdef GC_CHECK_STRING_BYTES
1388 return string_bytes (s);
1389 #else
1390 return s->size_byte < 0 ? s->size : s->size_byte;
1391 #endif
1392 }
1393
1394 INLINE ptrdiff_t
1395 SBYTES (Lisp_Object string)
1396 {
1397 return STRING_BYTES (XSTRING (string));
1398 }
1399 INLINE void
1400 STRING_SET_CHARS (Lisp_Object string, ptrdiff_t newsize)
1401 {
1402 XSTRING (string)->size = newsize;
1403 }
1404
1405 /* Header of vector-like objects. This documents the layout constraints on
1406 vectors and pseudovectors (objects of PVEC_xxx subtype). It also prevents
1407 compilers from being fooled by Emacs's type punning: XSETPSEUDOVECTOR
1408 and PSEUDOVECTORP cast their pointers to struct vectorlike_header *,
1409 because when two such pointers potentially alias, a compiler won't
1410 incorrectly reorder loads and stores to their size fields. See
1411 Bug#8546. */
1412 struct vectorlike_header
1413 {
1414 /* The only field contains various pieces of information:
1415 - The MSB (ARRAY_MARK_FLAG) holds the gcmarkbit.
1416 - The next bit (PSEUDOVECTOR_FLAG) indicates whether this is a plain
1417 vector (0) or a pseudovector (1).
1418 - If PSEUDOVECTOR_FLAG is 0, the rest holds the size (number
1419 of slots) of the vector.
1420 - If PSEUDOVECTOR_FLAG is 1, the rest is subdivided into three fields:
1421 - a) pseudovector subtype held in PVEC_TYPE_MASK field;
1422 - b) number of Lisp_Objects slots at the beginning of the object
1423 held in PSEUDOVECTOR_SIZE_MASK field. These objects are always
1424 traced by the GC;
1425 - c) size of the rest fields held in PSEUDOVECTOR_REST_MASK and
1426 measured in word_size units. Rest fields may also include
1427 Lisp_Objects, but these objects usually needs some special treatment
1428 during GC.
1429 There are some exceptions. For PVEC_FREE, b) is always zero. For
1430 PVEC_BOOL_VECTOR and PVEC_SUBR, both b) and c) are always zero.
1431 Current layout limits the pseudovectors to 63 PVEC_xxx subtypes,
1432 4095 Lisp_Objects in GC-ed area and 4095 word-sized other slots. */
1433 ptrdiff_t size;
1434 };
1435
1436 /* A regular vector is just a header plus an array of Lisp_Objects. */
1437
1438 struct Lisp_Vector
1439 {
1440 struct vectorlike_header header;
1441 Lisp_Object contents[FLEXIBLE_ARRAY_MEMBER];
1442 };
1443
1444 /* C11 prohibits alignof (struct Lisp_Vector), so compute it manually. */
1445 enum
1446 {
1447 ALIGNOF_STRUCT_LISP_VECTOR
1448 = alignof (union { struct vectorlike_header a; Lisp_Object b; })
1449 };
1450
1451 /* A boolvector is a kind of vectorlike, with contents like a string. */
1452
1453 struct Lisp_Bool_Vector
1454 {
1455 /* HEADER.SIZE is the vector's size field. It doesn't have the real size,
1456 just the subtype information. */
1457 struct vectorlike_header header;
1458 /* This is the size in bits. */
1459 EMACS_INT size;
1460 /* The actual bits, packed into bytes.
1461 Zeros fill out the last word if needed.
1462 The bits are in little-endian order in the bytes, and
1463 the bytes are in little-endian order in the words. */
1464 bits_word data[FLEXIBLE_ARRAY_MEMBER];
1465 };
1466
1467 INLINE EMACS_INT
1468 bool_vector_size (Lisp_Object a)
1469 {
1470 EMACS_INT size = XBOOL_VECTOR (a)->size;
1471 eassume (0 <= size);
1472 return size;
1473 }
1474
1475 INLINE bits_word *
1476 bool_vector_data (Lisp_Object a)
1477 {
1478 return XBOOL_VECTOR (a)->data;
1479 }
1480
1481 INLINE unsigned char *
1482 bool_vector_uchar_data (Lisp_Object a)
1483 {
1484 return (unsigned char *) bool_vector_data (a);
1485 }
1486
1487 /* The number of data words and bytes in a bool vector with SIZE bits. */
1488
1489 INLINE EMACS_INT
1490 bool_vector_words (EMACS_INT size)
1491 {
1492 eassume (0 <= size && size <= EMACS_INT_MAX - (BITS_PER_BITS_WORD - 1));
1493 return (size + BITS_PER_BITS_WORD - 1) / BITS_PER_BITS_WORD;
1494 }
1495
1496 INLINE EMACS_INT
1497 bool_vector_bytes (EMACS_INT size)
1498 {
1499 eassume (0 <= size && size <= EMACS_INT_MAX - (BITS_PER_BITS_WORD - 1));
1500 return (size + BOOL_VECTOR_BITS_PER_CHAR - 1) / BOOL_VECTOR_BITS_PER_CHAR;
1501 }
1502
1503 /* True if A's Ith bit is set. */
1504
1505 INLINE bool
1506 bool_vector_bitref (Lisp_Object a, EMACS_INT i)
1507 {
1508 eassume (0 <= i && i < bool_vector_size (a));
1509 return !! (bool_vector_uchar_data (a)[i / BOOL_VECTOR_BITS_PER_CHAR]
1510 & (1 << (i % BOOL_VECTOR_BITS_PER_CHAR)));
1511 }
1512
1513 INLINE Lisp_Object
1514 bool_vector_ref (Lisp_Object a, EMACS_INT i)
1515 {
1516 return bool_vector_bitref (a, i) ? Qt : Qnil;
1517 }
1518
1519 /* Set A's Ith bit to B. */
1520
1521 INLINE void
1522 bool_vector_set (Lisp_Object a, EMACS_INT i, bool b)
1523 {
1524 unsigned char *addr;
1525
1526 eassume (0 <= i && i < bool_vector_size (a));
1527 addr = &bool_vector_uchar_data (a)[i / BOOL_VECTOR_BITS_PER_CHAR];
1528
1529 if (b)
1530 *addr |= 1 << (i % BOOL_VECTOR_BITS_PER_CHAR);
1531 else
1532 *addr &= ~ (1 << (i % BOOL_VECTOR_BITS_PER_CHAR));
1533 }
1534
1535 /* Some handy constants for calculating sizes
1536 and offsets, mostly of vectorlike objects. */
1537
1538 enum
1539 {
1540 header_size = offsetof (struct Lisp_Vector, contents),
1541 bool_header_size = offsetof (struct Lisp_Bool_Vector, data),
1542 word_size = sizeof (Lisp_Object)
1543 };
1544
1545 /* Conveniences for dealing with Lisp arrays. */
1546
1547 INLINE Lisp_Object
1548 AREF (Lisp_Object array, ptrdiff_t idx)
1549 {
1550 return XVECTOR (array)->contents[idx];
1551 }
1552
1553 INLINE Lisp_Object *
1554 aref_addr (Lisp_Object array, ptrdiff_t idx)
1555 {
1556 return & XVECTOR (array)->contents[idx];
1557 }
1558
1559 INLINE ptrdiff_t
1560 ASIZE (Lisp_Object array)
1561 {
1562 ptrdiff_t size = XVECTOR (array)->header.size;
1563 eassume (0 <= size);
1564 return size;
1565 }
1566
1567 INLINE ptrdiff_t
1568 gc_asize (Lisp_Object array)
1569 {
1570 /* Like ASIZE, but also can be used in the garbage collector. */
1571 return XVECTOR (array)->header.size & ~ARRAY_MARK_FLAG;
1572 }
1573
1574 INLINE void
1575 ASET (Lisp_Object array, ptrdiff_t idx, Lisp_Object val)
1576 {
1577 eassert (0 <= idx && idx < ASIZE (array));
1578 XVECTOR (array)->contents[idx] = val;
1579 }
1580
1581 INLINE void
1582 gc_aset (Lisp_Object array, ptrdiff_t idx, Lisp_Object val)
1583 {
1584 /* Like ASET, but also can be used in the garbage collector:
1585 sweep_weak_table calls set_hash_key etc. while the table is marked. */
1586 eassert (0 <= idx && idx < gc_asize (array));
1587 XVECTOR (array)->contents[idx] = val;
1588 }
1589
1590 /* True, since Qnil's representation is zero. Every place in the code
1591 that assumes Qnil is zero should verify (NIL_IS_ZERO), to make it easy
1592 to find such assumptions later if we change Qnil to be nonzero. */
1593 enum { NIL_IS_ZERO = XLI_BUILTIN_LISPSYM (iQnil) == 0 };
1594
1595 /* Clear the object addressed by P, with size NBYTES, so that all its
1596 bytes are zero and all its Lisp values are nil. */
1597 INLINE void
1598 memclear (void *p, ptrdiff_t nbytes)
1599 {
1600 eassert (0 <= nbytes);
1601 verify (NIL_IS_ZERO);
1602 /* Since Qnil is zero, memset suffices. */
1603 memset (p, 0, nbytes);
1604 }
1605
1606 /* If a struct is made to look like a vector, this macro returns the length
1607 of the shortest vector that would hold that struct. */
1608
1609 #define VECSIZE(type) \
1610 ((sizeof (type) - header_size + word_size - 1) / word_size)
1611
1612 /* Like VECSIZE, but used when the pseudo-vector has non-Lisp_Object fields
1613 at the end and we need to compute the number of Lisp_Object fields (the
1614 ones that the GC needs to trace). */
1615
1616 #define PSEUDOVECSIZE(type, nonlispfield) \
1617 ((offsetof (type, nonlispfield) - header_size) / word_size)
1618
1619 /* Compute A OP B, using the unsigned comparison operator OP. A and B
1620 should be integer expressions. This is not the same as
1621 mathematical comparison; for example, UNSIGNED_CMP (0, <, -1)
1622 returns true. For efficiency, prefer plain unsigned comparison if A
1623 and B's sizes both fit (after integer promotion). */
1624 #define UNSIGNED_CMP(a, op, b) \
1625 (max (sizeof ((a) + 0), sizeof ((b) + 0)) <= sizeof (unsigned) \
1626 ? ((a) + (unsigned) 0) op ((b) + (unsigned) 0) \
1627 : ((a) + (uintmax_t) 0) op ((b) + (uintmax_t) 0))
1628
1629 /* True iff C is an ASCII character. */
1630 #define ASCII_CHAR_P(c) UNSIGNED_CMP (c, <, 0x80)
1631
1632 /* A char-table is a kind of vectorlike, with contents are like a
1633 vector but with a few other slots. For some purposes, it makes
1634 sense to handle a char-table with type struct Lisp_Vector. An
1635 element of a char table can be any Lisp objects, but if it is a sub
1636 char-table, we treat it a table that contains information of a
1637 specific range of characters. A sub char-table is like a vector but
1638 with two integer fields between the header and Lisp data, which means
1639 that it has to be marked with some precautions (see mark_char_table
1640 in alloc.c). A sub char-table appears only in an element of a char-table,
1641 and there's no way to access it directly from Emacs Lisp program. */
1642
1643 enum CHARTAB_SIZE_BITS
1644 {
1645 CHARTAB_SIZE_BITS_0 = 6,
1646 CHARTAB_SIZE_BITS_1 = 4,
1647 CHARTAB_SIZE_BITS_2 = 5,
1648 CHARTAB_SIZE_BITS_3 = 7
1649 };
1650
1651 extern const int chartab_size[4];
1652
1653 struct Lisp_Char_Table
1654 {
1655 /* HEADER.SIZE is the vector's size field, which also holds the
1656 pseudovector type information. It holds the size, too.
1657 The size counts the defalt, parent, purpose, ascii,
1658 contents, and extras slots. */
1659 struct vectorlike_header header;
1660
1661 /* This holds a default value,
1662 which is used whenever the value for a specific character is nil. */
1663 Lisp_Object defalt;
1664
1665 /* This points to another char table, which we inherit from when the
1666 value for a specific character is nil. The `defalt' slot takes
1667 precedence over this. */
1668 Lisp_Object parent;
1669
1670 /* This is a symbol which says what kind of use this char-table is
1671 meant for. */
1672 Lisp_Object purpose;
1673
1674 /* The bottom sub char-table for characters of the range 0..127. It
1675 is nil if none of ASCII character has a specific value. */
1676 Lisp_Object ascii;
1677
1678 Lisp_Object contents[(1 << CHARTAB_SIZE_BITS_0)];
1679
1680 /* These hold additional data. It is a vector. */
1681 Lisp_Object extras[FLEXIBLE_ARRAY_MEMBER];
1682 };
1683
1684 struct Lisp_Sub_Char_Table
1685 {
1686 /* HEADER.SIZE is the vector's size field, which also holds the
1687 pseudovector type information. It holds the size, too. */
1688 struct vectorlike_header header;
1689
1690 /* Depth of this sub char-table. It should be 1, 2, or 3. A sub
1691 char-table of depth 1 contains 16 elements, and each element
1692 covers 4096 (128*32) characters. A sub char-table of depth 2
1693 contains 32 elements, and each element covers 128 characters. A
1694 sub char-table of depth 3 contains 128 elements, and each element
1695 is for one character. */
1696 int depth;
1697
1698 /* Minimum character covered by the sub char-table. */
1699 int min_char;
1700
1701 /* Use set_sub_char_table_contents to set this. */
1702 Lisp_Object contents[FLEXIBLE_ARRAY_MEMBER];
1703 };
1704
1705 INLINE Lisp_Object
1706 CHAR_TABLE_REF_ASCII (Lisp_Object ct, ptrdiff_t idx)
1707 {
1708 struct Lisp_Char_Table *tbl = NULL;
1709 Lisp_Object val;
1710 do
1711 {
1712 tbl = tbl ? XCHAR_TABLE (tbl->parent) : XCHAR_TABLE (ct);
1713 val = (! SUB_CHAR_TABLE_P (tbl->ascii) ? tbl->ascii
1714 : XSUB_CHAR_TABLE (tbl->ascii)->contents[idx]);
1715 if (NILP (val))
1716 val = tbl->defalt;
1717 }
1718 while (NILP (val) && ! NILP (tbl->parent));
1719
1720 return val;
1721 }
1722
1723 /* Almost equivalent to Faref (CT, IDX) with optimization for ASCII
1724 characters. Do not check validity of CT. */
1725 INLINE Lisp_Object
1726 CHAR_TABLE_REF (Lisp_Object ct, int idx)
1727 {
1728 return (ASCII_CHAR_P (idx)
1729 ? CHAR_TABLE_REF_ASCII (ct, idx)
1730 : char_table_ref (ct, idx));
1731 }
1732
1733 /* Equivalent to Faset (CT, IDX, VAL) with optimization for ASCII and
1734 8-bit European characters. Do not check validity of CT. */
1735 INLINE void
1736 CHAR_TABLE_SET (Lisp_Object ct, int idx, Lisp_Object val)
1737 {
1738 if (ASCII_CHAR_P (idx) && SUB_CHAR_TABLE_P (XCHAR_TABLE (ct)->ascii))
1739 set_sub_char_table_contents (XCHAR_TABLE (ct)->ascii, idx, val);
1740 else
1741 char_table_set (ct, idx, val);
1742 }
1743
1744 /* This structure describes a built-in function.
1745 It is generated by the DEFUN macro only.
1746 defsubr makes it into a Lisp object. */
1747
1748 struct Lisp_Subr
1749 {
1750 struct vectorlike_header header;
1751 union {
1752 Lisp_Object (*a0) (void);
1753 Lisp_Object (*a1) (Lisp_Object);
1754 Lisp_Object (*a2) (Lisp_Object, Lisp_Object);
1755 Lisp_Object (*a3) (Lisp_Object, Lisp_Object, Lisp_Object);
1756 Lisp_Object (*a4) (Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object);
1757 Lisp_Object (*a5) (Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object);
1758 Lisp_Object (*a6) (Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object);
1759 Lisp_Object (*a7) (Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object);
1760 Lisp_Object (*a8) (Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object);
1761 Lisp_Object (*aUNEVALLED) (Lisp_Object args);
1762 Lisp_Object (*aMANY) (ptrdiff_t, Lisp_Object *);
1763 } function;
1764 short min_args, max_args;
1765 const char *symbol_name;
1766 const char *intspec;
1767 const char *doc;
1768 };
1769
1770 enum char_table_specials
1771 {
1772 /* This is the number of slots that every char table must have. This
1773 counts the ordinary slots and the top, defalt, parent, and purpose
1774 slots. */
1775 CHAR_TABLE_STANDARD_SLOTS = PSEUDOVECSIZE (struct Lisp_Char_Table, extras),
1776
1777 /* This is an index of first Lisp_Object field in Lisp_Sub_Char_Table
1778 when the latter is treated as an ordinary Lisp_Vector. */
1779 SUB_CHAR_TABLE_OFFSET = PSEUDOVECSIZE (struct Lisp_Sub_Char_Table, contents)
1780 };
1781
1782 /* Return the number of "extra" slots in the char table CT. */
1783
1784 INLINE int
1785 CHAR_TABLE_EXTRA_SLOTS (struct Lisp_Char_Table *ct)
1786 {
1787 return ((ct->header.size & PSEUDOVECTOR_SIZE_MASK)
1788 - CHAR_TABLE_STANDARD_SLOTS);
1789 }
1790
1791 /* Make sure that sub char-table contents slot is where we think it is. */
1792 verify (offsetof (struct Lisp_Sub_Char_Table, contents)
1793 == offsetof (struct Lisp_Vector, contents[SUB_CHAR_TABLE_OFFSET]));
1794
1795 /***********************************************************************
1796 Symbols
1797 ***********************************************************************/
1798
1799 /* Value is name of symbol. */
1800
1801 INLINE Lisp_Object
1802 (SYMBOL_VAL) (struct Lisp_Symbol *sym)
1803 {
1804 return lisp_h_SYMBOL_VAL (sym);
1805 }
1806
1807 INLINE struct Lisp_Symbol *
1808 SYMBOL_ALIAS (struct Lisp_Symbol *sym)
1809 {
1810 eassert (sym->redirect == SYMBOL_VARALIAS);
1811 return sym->val.alias;
1812 }
1813 INLINE struct Lisp_Buffer_Local_Value *
1814 SYMBOL_BLV (struct Lisp_Symbol *sym)
1815 {
1816 eassert (sym->redirect == SYMBOL_LOCALIZED);
1817 return sym->val.blv;
1818 }
1819 INLINE union Lisp_Fwd *
1820 SYMBOL_FWD (struct Lisp_Symbol *sym)
1821 {
1822 eassert (sym->redirect == SYMBOL_FORWARDED);
1823 return sym->val.fwd;
1824 }
1825
1826 INLINE void
1827 (SET_SYMBOL_VAL) (struct Lisp_Symbol *sym, Lisp_Object v)
1828 {
1829 lisp_h_SET_SYMBOL_VAL (sym, v);
1830 }
1831
1832 INLINE void
1833 SET_SYMBOL_ALIAS (struct Lisp_Symbol *sym, struct Lisp_Symbol *v)
1834 {
1835 eassert (sym->redirect == SYMBOL_VARALIAS);
1836 sym->val.alias = v;
1837 }
1838 INLINE void
1839 SET_SYMBOL_BLV (struct Lisp_Symbol *sym, struct Lisp_Buffer_Local_Value *v)
1840 {
1841 eassert (sym->redirect == SYMBOL_LOCALIZED);
1842 sym->val.blv = v;
1843 }
1844 INLINE void
1845 SET_SYMBOL_FWD (struct Lisp_Symbol *sym, union Lisp_Fwd *v)
1846 {
1847 eassert (sym->redirect == SYMBOL_FORWARDED);
1848 sym->val.fwd = v;
1849 }
1850
1851 INLINE Lisp_Object
1852 SYMBOL_NAME (Lisp_Object sym)
1853 {
1854 return XSYMBOL (sym)->name;
1855 }
1856
1857 /* Value is true if SYM is an interned symbol. */
1858
1859 INLINE bool
1860 SYMBOL_INTERNED_P (Lisp_Object sym)
1861 {
1862 return XSYMBOL (sym)->interned != SYMBOL_UNINTERNED;
1863 }
1864
1865 /* Value is true if SYM is interned in initial_obarray. */
1866
1867 INLINE bool
1868 SYMBOL_INTERNED_IN_INITIAL_OBARRAY_P (Lisp_Object sym)
1869 {
1870 return XSYMBOL (sym)->interned == SYMBOL_INTERNED_IN_INITIAL_OBARRAY;
1871 }
1872
1873 /* Value is non-zero if symbol is considered a constant, i.e. its
1874 value cannot be changed (there is an exception for keyword symbols,
1875 whose value can be set to the keyword symbol itself). */
1876
1877 INLINE int
1878 (SYMBOL_CONSTANT_P) (Lisp_Object sym)
1879 {
1880 return lisp_h_SYMBOL_CONSTANT_P (sym);
1881 }
1882
1883 /* Placeholder for make-docfile to process. The actual symbol
1884 definition is done by lread.c's defsym. */
1885 #define DEFSYM(sym, name) /* empty */
1886
1887 \f
1888 /***********************************************************************
1889 Hash Tables
1890 ***********************************************************************/
1891
1892 /* The structure of a Lisp hash table. */
1893
1894 struct hash_table_test
1895 {
1896 /* Name of the function used to compare keys. */
1897 Lisp_Object name;
1898
1899 /* User-supplied hash function, or nil. */
1900 Lisp_Object user_hash_function;
1901
1902 /* User-supplied key comparison function, or nil. */
1903 Lisp_Object user_cmp_function;
1904
1905 /* C function to compare two keys. */
1906 bool (*cmpfn) (struct hash_table_test *t, Lisp_Object, Lisp_Object);
1907
1908 /* C function to compute hash code. */
1909 EMACS_UINT (*hashfn) (struct hash_table_test *t, Lisp_Object);
1910 };
1911
1912 struct Lisp_Hash_Table
1913 {
1914 /* This is for Lisp; the hash table code does not refer to it. */
1915 struct vectorlike_header header;
1916
1917 /* Nil if table is non-weak. Otherwise a symbol describing the
1918 weakness of the table. */
1919 Lisp_Object weak;
1920
1921 /* When the table is resized, and this is an integer, compute the
1922 new size by adding this to the old size. If a float, compute the
1923 new size by multiplying the old size with this factor. */
1924 Lisp_Object rehash_size;
1925
1926 /* Resize hash table when number of entries/ table size is >= this
1927 ratio, a float. */
1928 Lisp_Object rehash_threshold;
1929
1930 /* Vector of hash codes. If hash[I] is nil, this means that the
1931 I-th entry is unused. */
1932 Lisp_Object hash;
1933
1934 /* Vector used to chain entries. If entry I is free, next[I] is the
1935 entry number of the next free item. If entry I is non-free,
1936 next[I] is the index of the next entry in the collision chain. */
1937 Lisp_Object next;
1938
1939 /* Index of first free entry in free list. */
1940 Lisp_Object next_free;
1941
1942 /* Bucket vector. A non-nil entry is the index of the first item in
1943 a collision chain. This vector's size can be larger than the
1944 hash table size to reduce collisions. */
1945 Lisp_Object index;
1946
1947 /* Only the fields above are traced normally by the GC. The ones below
1948 `count' are special and are either ignored by the GC or traced in
1949 a special way (e.g. because of weakness). */
1950
1951 /* Number of key/value entries in the table. */
1952 ptrdiff_t count;
1953
1954 /* Vector of keys and values. The key of item I is found at index
1955 2 * I, the value is found at index 2 * I + 1.
1956 This is gc_marked specially if the table is weak. */
1957 Lisp_Object key_and_value;
1958
1959 /* The comparison and hash functions. */
1960 struct hash_table_test test;
1961
1962 /* Next weak hash table if this is a weak hash table. The head
1963 of the list is in weak_hash_tables. */
1964 struct Lisp_Hash_Table *next_weak;
1965 };
1966
1967
1968 INLINE bool
1969 HASH_TABLE_P (Lisp_Object a)
1970 {
1971 return PSEUDOVECTORP (a, PVEC_HASH_TABLE);
1972 }
1973
1974 INLINE struct Lisp_Hash_Table *
1975 XHASH_TABLE (Lisp_Object a)
1976 {
1977 eassert (HASH_TABLE_P (a));
1978 return XUNTAG (a, Lisp_Vectorlike);
1979 }
1980
1981 #define XSET_HASH_TABLE(VAR, PTR) \
1982 (XSETPSEUDOVECTOR (VAR, PTR, PVEC_HASH_TABLE))
1983
1984 /* Value is the key part of entry IDX in hash table H. */
1985 INLINE Lisp_Object
1986 HASH_KEY (struct Lisp_Hash_Table *h, ptrdiff_t idx)
1987 {
1988 return AREF (h->key_and_value, 2 * idx);
1989 }
1990
1991 /* Value is the value part of entry IDX in hash table H. */
1992 INLINE Lisp_Object
1993 HASH_VALUE (struct Lisp_Hash_Table *h, ptrdiff_t idx)
1994 {
1995 return AREF (h->key_and_value, 2 * idx + 1);
1996 }
1997
1998 /* Value is the index of the next entry following the one at IDX
1999 in hash table H. */
2000 INLINE Lisp_Object
2001 HASH_NEXT (struct Lisp_Hash_Table *h, ptrdiff_t idx)
2002 {
2003 return AREF (h->next, idx);
2004 }
2005
2006 /* Value is the hash code computed for entry IDX in hash table H. */
2007 INLINE Lisp_Object
2008 HASH_HASH (struct Lisp_Hash_Table *h, ptrdiff_t idx)
2009 {
2010 return AREF (h->hash, idx);
2011 }
2012
2013 /* Value is the index of the element in hash table H that is the
2014 start of the collision list at index IDX in the index vector of H. */
2015 INLINE Lisp_Object
2016 HASH_INDEX (struct Lisp_Hash_Table *h, ptrdiff_t idx)
2017 {
2018 return AREF (h->index, idx);
2019 }
2020
2021 /* Value is the size of hash table H. */
2022 INLINE ptrdiff_t
2023 HASH_TABLE_SIZE (struct Lisp_Hash_Table *h)
2024 {
2025 return ASIZE (h->next);
2026 }
2027
2028 /* Default size for hash tables if not specified. */
2029
2030 enum DEFAULT_HASH_SIZE { DEFAULT_HASH_SIZE = 65 };
2031
2032 /* Default threshold specifying when to resize a hash table. The
2033 value gives the ratio of current entries in the hash table and the
2034 size of the hash table. */
2035
2036 static double const DEFAULT_REHASH_THRESHOLD = 0.8;
2037
2038 /* Default factor by which to increase the size of a hash table. */
2039
2040 static double const DEFAULT_REHASH_SIZE = 1.5;
2041
2042 /* Combine two integers X and Y for hashing. The result might not fit
2043 into a Lisp integer. */
2044
2045 INLINE EMACS_UINT
2046 sxhash_combine (EMACS_UINT x, EMACS_UINT y)
2047 {
2048 return (x << 4) + (x >> (BITS_PER_EMACS_INT - 4)) + y;
2049 }
2050
2051 /* Hash X, returning a value that fits into a fixnum. */
2052
2053 INLINE EMACS_UINT
2054 SXHASH_REDUCE (EMACS_UINT x)
2055 {
2056 return (x ^ x >> (BITS_PER_EMACS_INT - FIXNUM_BITS)) & INTMASK;
2057 }
2058
2059 /* These structures are used for various misc types. */
2060
2061 struct Lisp_Misc_Any /* Supertype of all Misc types. */
2062 {
2063 ENUM_BF (Lisp_Misc_Type) type : 16; /* = Lisp_Misc_??? */
2064 bool_bf gcmarkbit : 1;
2065 unsigned spacer : 15;
2066 };
2067
2068 struct Lisp_Marker
2069 {
2070 ENUM_BF (Lisp_Misc_Type) type : 16; /* = Lisp_Misc_Marker */
2071 bool_bf gcmarkbit : 1;
2072 unsigned spacer : 13;
2073 /* This flag is temporarily used in the functions
2074 decode/encode_coding_object to record that the marker position
2075 must be adjusted after the conversion. */
2076 bool_bf need_adjustment : 1;
2077 /* True means normal insertion at the marker's position
2078 leaves the marker after the inserted text. */
2079 bool_bf insertion_type : 1;
2080 /* This is the buffer that the marker points into, or 0 if it points nowhere.
2081 Note: a chain of markers can contain markers pointing into different
2082 buffers (the chain is per buffer_text rather than per buffer, so it's
2083 shared between indirect buffers). */
2084 /* This is used for (other than NULL-checking):
2085 - Fmarker_buffer
2086 - Fset_marker: check eq(oldbuf, newbuf) to avoid unchain+rechain.
2087 - unchain_marker: to find the list from which to unchain.
2088 - Fkill_buffer: to only unchain the markers of current indirect buffer.
2089 */
2090 struct buffer *buffer;
2091
2092 /* The remaining fields are meaningless in a marker that
2093 does not point anywhere. */
2094
2095 /* For markers that point somewhere,
2096 this is used to chain of all the markers in a given buffer. */
2097 /* We could remove it and use an array in buffer_text instead.
2098 That would also allow to preserve it ordered. */
2099 struct Lisp_Marker *next;
2100 /* This is the char position where the marker points. */
2101 ptrdiff_t charpos;
2102 /* This is the byte position.
2103 It's mostly used as a charpos<->bytepos cache (i.e. it's not directly
2104 used to implement the functionality of markers, but rather to (ab)use
2105 markers as a cache for char<->byte mappings). */
2106 ptrdiff_t bytepos;
2107 };
2108
2109 /* START and END are markers in the overlay's buffer, and
2110 PLIST is the overlay's property list. */
2111 struct Lisp_Overlay
2112 /* An overlay's real data content is:
2113 - plist
2114 - buffer (really there are two buffer pointers, one per marker,
2115 and both points to the same buffer)
2116 - insertion type of both ends (per-marker fields)
2117 - start & start byte (of start marker)
2118 - end & end byte (of end marker)
2119 - next (singly linked list of overlays)
2120 - next fields of start and end markers (singly linked list of markers).
2121 I.e. 9words plus 2 bits, 3words of which are for external linked lists.
2122 */
2123 {
2124 ENUM_BF (Lisp_Misc_Type) type : 16; /* = Lisp_Misc_Overlay */
2125 bool_bf gcmarkbit : 1;
2126 unsigned spacer : 15;
2127 struct Lisp_Overlay *next;
2128 Lisp_Object start;
2129 Lisp_Object end;
2130 Lisp_Object plist;
2131 };
2132
2133 /* Types of data which may be saved in a Lisp_Save_Value. */
2134
2135 enum
2136 {
2137 SAVE_UNUSED,
2138 SAVE_INTEGER,
2139 SAVE_FUNCPOINTER,
2140 SAVE_POINTER,
2141 SAVE_OBJECT
2142 };
2143
2144 /* Number of bits needed to store one of the above values. */
2145 enum { SAVE_SLOT_BITS = 3 };
2146
2147 /* Number of slots in a save value where save_type is nonzero. */
2148 enum { SAVE_VALUE_SLOTS = 4 };
2149
2150 /* Bit-width and values for struct Lisp_Save_Value's save_type member. */
2151
2152 enum { SAVE_TYPE_BITS = SAVE_VALUE_SLOTS * SAVE_SLOT_BITS + 1 };
2153
2154 enum Lisp_Save_Type
2155 {
2156 SAVE_TYPE_INT_INT = SAVE_INTEGER + (SAVE_INTEGER << SAVE_SLOT_BITS),
2157 SAVE_TYPE_INT_INT_INT
2158 = (SAVE_INTEGER + (SAVE_TYPE_INT_INT << SAVE_SLOT_BITS)),
2159 SAVE_TYPE_OBJ_OBJ = SAVE_OBJECT + (SAVE_OBJECT << SAVE_SLOT_BITS),
2160 SAVE_TYPE_OBJ_OBJ_OBJ = SAVE_OBJECT + (SAVE_TYPE_OBJ_OBJ << SAVE_SLOT_BITS),
2161 SAVE_TYPE_OBJ_OBJ_OBJ_OBJ
2162 = SAVE_OBJECT + (SAVE_TYPE_OBJ_OBJ_OBJ << SAVE_SLOT_BITS),
2163 SAVE_TYPE_PTR_INT = SAVE_POINTER + (SAVE_INTEGER << SAVE_SLOT_BITS),
2164 SAVE_TYPE_PTR_OBJ = SAVE_POINTER + (SAVE_OBJECT << SAVE_SLOT_BITS),
2165 SAVE_TYPE_PTR_PTR = SAVE_POINTER + (SAVE_POINTER << SAVE_SLOT_BITS),
2166 SAVE_TYPE_FUNCPTR_PTR_OBJ
2167 = SAVE_FUNCPOINTER + (SAVE_TYPE_PTR_OBJ << SAVE_SLOT_BITS),
2168
2169 /* This has an extra bit indicating it's raw memory. */
2170 SAVE_TYPE_MEMORY = SAVE_TYPE_PTR_INT + (1 << (SAVE_TYPE_BITS - 1))
2171 };
2172
2173 /* Special object used to hold a different values for later use.
2174
2175 This is mostly used to package C integers and pointers to call
2176 record_unwind_protect when two or more values need to be saved.
2177 For example:
2178
2179 ...
2180 struct my_data *md = get_my_data ();
2181 ptrdiff_t mi = get_my_integer ();
2182 record_unwind_protect (my_unwind, make_save_ptr_int (md, mi));
2183 ...
2184
2185 Lisp_Object my_unwind (Lisp_Object arg)
2186 {
2187 struct my_data *md = XSAVE_POINTER (arg, 0);
2188 ptrdiff_t mi = XSAVE_INTEGER (arg, 1);
2189 ...
2190 }
2191
2192 If ENABLE_CHECKING is in effect, XSAVE_xxx macros do type checking of the
2193 saved objects and raise eassert if type of the saved object doesn't match
2194 the type which is extracted. In the example above, XSAVE_INTEGER (arg, 2)
2195 and XSAVE_OBJECT (arg, 0) are wrong because nothing was saved in slot 2 and
2196 slot 0 is a pointer. */
2197
2198 typedef void (*voidfuncptr) (void);
2199
2200 struct Lisp_Save_Value
2201 {
2202 ENUM_BF (Lisp_Misc_Type) type : 16; /* = Lisp_Misc_Save_Value */
2203 bool_bf gcmarkbit : 1;
2204 unsigned spacer : 32 - (16 + 1 + SAVE_TYPE_BITS);
2205
2206 /* V->data may hold up to SAVE_VALUE_SLOTS entries. The type of
2207 V's data entries are determined by V->save_type. E.g., if
2208 V->save_type == SAVE_TYPE_PTR_OBJ, V->data[0] is a pointer,
2209 V->data[1] is an integer, and V's other data entries are unused.
2210
2211 If V->save_type == SAVE_TYPE_MEMORY, V->data[0].pointer is the address of
2212 a memory area containing V->data[1].integer potential Lisp_Objects. */
2213 ENUM_BF (Lisp_Save_Type) save_type : SAVE_TYPE_BITS;
2214 union {
2215 void *pointer;
2216 voidfuncptr funcpointer;
2217 ptrdiff_t integer;
2218 Lisp_Object object;
2219 } data[SAVE_VALUE_SLOTS];
2220 };
2221
2222 /* Return the type of V's Nth saved value. */
2223 INLINE int
2224 save_type (struct Lisp_Save_Value *v, int n)
2225 {
2226 eassert (0 <= n && n < SAVE_VALUE_SLOTS);
2227 return (v->save_type >> (SAVE_SLOT_BITS * n) & ((1 << SAVE_SLOT_BITS) - 1));
2228 }
2229
2230 /* Get and set the Nth saved pointer. */
2231
2232 INLINE void *
2233 XSAVE_POINTER (Lisp_Object obj, int n)
2234 {
2235 eassert (save_type (XSAVE_VALUE (obj), n) == SAVE_POINTER);
2236 return XSAVE_VALUE (obj)->data[n].pointer;
2237 }
2238 INLINE void
2239 set_save_pointer (Lisp_Object obj, int n, void *val)
2240 {
2241 eassert (save_type (XSAVE_VALUE (obj), n) == SAVE_POINTER);
2242 XSAVE_VALUE (obj)->data[n].pointer = val;
2243 }
2244 INLINE voidfuncptr
2245 XSAVE_FUNCPOINTER (Lisp_Object obj, int n)
2246 {
2247 eassert (save_type (XSAVE_VALUE (obj), n) == SAVE_FUNCPOINTER);
2248 return XSAVE_VALUE (obj)->data[n].funcpointer;
2249 }
2250
2251 /* Likewise for the saved integer. */
2252
2253 INLINE ptrdiff_t
2254 XSAVE_INTEGER (Lisp_Object obj, int n)
2255 {
2256 eassert (save_type (XSAVE_VALUE (obj), n) == SAVE_INTEGER);
2257 return XSAVE_VALUE (obj)->data[n].integer;
2258 }
2259 INLINE void
2260 set_save_integer (Lisp_Object obj, int n, ptrdiff_t val)
2261 {
2262 eassert (save_type (XSAVE_VALUE (obj), n) == SAVE_INTEGER);
2263 XSAVE_VALUE (obj)->data[n].integer = val;
2264 }
2265
2266 /* Extract Nth saved object. */
2267
2268 INLINE Lisp_Object
2269 XSAVE_OBJECT (Lisp_Object obj, int n)
2270 {
2271 eassert (save_type (XSAVE_VALUE (obj), n) == SAVE_OBJECT);
2272 return XSAVE_VALUE (obj)->data[n].object;
2273 }
2274
2275 #ifdef HAVE_MODULES
2276 struct Lisp_User_Ptr
2277 {
2278 ENUM_BF (Lisp_Misc_Type) type : 16; /* = Lisp_Misc_User_Ptr */
2279 bool_bf gcmarkbit : 1;
2280 unsigned spacer : 15;
2281
2282 void (*finalizer) (void *);
2283 void *p;
2284 };
2285 #endif
2286
2287 /* A finalizer sentinel. */
2288 struct Lisp_Finalizer
2289 {
2290 struct Lisp_Misc_Any base;
2291
2292 /* Circular list of all active weak references. */
2293 struct Lisp_Finalizer *prev;
2294 struct Lisp_Finalizer *next;
2295
2296 /* Call FUNCTION when the finalizer becomes unreachable, even if
2297 FUNCTION contains a reference to the finalizer; i.e., call
2298 FUNCTION when it is reachable _only_ through finalizers. */
2299 Lisp_Object function;
2300 };
2301
2302 /* A miscellaneous object, when it's on the free list. */
2303 struct Lisp_Free
2304 {
2305 ENUM_BF (Lisp_Misc_Type) type : 16; /* = Lisp_Misc_Free */
2306 bool_bf gcmarkbit : 1;
2307 unsigned spacer : 15;
2308 union Lisp_Misc *chain;
2309 };
2310
2311 /* To get the type field of a union Lisp_Misc, use XMISCTYPE.
2312 It uses one of these struct subtypes to get the type field. */
2313
2314 union Lisp_Misc
2315 {
2316 struct Lisp_Misc_Any u_any; /* Supertype of all Misc types. */
2317 struct Lisp_Free u_free;
2318 struct Lisp_Marker u_marker;
2319 struct Lisp_Overlay u_overlay;
2320 struct Lisp_Save_Value u_save_value;
2321 struct Lisp_Finalizer u_finalizer;
2322 #ifdef HAVE_MODULES
2323 struct Lisp_User_Ptr u_user_ptr;
2324 #endif
2325 };
2326
2327 INLINE union Lisp_Misc *
2328 XMISC (Lisp_Object a)
2329 {
2330 return XUNTAG (a, Lisp_Misc);
2331 }
2332
2333 INLINE struct Lisp_Misc_Any *
2334 XMISCANY (Lisp_Object a)
2335 {
2336 eassert (MISCP (a));
2337 return & XMISC (a)->u_any;
2338 }
2339
2340 INLINE enum Lisp_Misc_Type
2341 XMISCTYPE (Lisp_Object a)
2342 {
2343 return XMISCANY (a)->type;
2344 }
2345
2346 INLINE struct Lisp_Marker *
2347 XMARKER (Lisp_Object a)
2348 {
2349 eassert (MARKERP (a));
2350 return & XMISC (a)->u_marker;
2351 }
2352
2353 INLINE struct Lisp_Overlay *
2354 XOVERLAY (Lisp_Object a)
2355 {
2356 eassert (OVERLAYP (a));
2357 return & XMISC (a)->u_overlay;
2358 }
2359
2360 INLINE struct Lisp_Save_Value *
2361 XSAVE_VALUE (Lisp_Object a)
2362 {
2363 eassert (SAVE_VALUEP (a));
2364 return & XMISC (a)->u_save_value;
2365 }
2366
2367 INLINE struct Lisp_Finalizer *
2368 XFINALIZER (Lisp_Object a)
2369 {
2370 eassert (FINALIZERP (a));
2371 return & XMISC (a)->u_finalizer;
2372 }
2373
2374 #ifdef HAVE_MODULES
2375 INLINE struct Lisp_User_Ptr *
2376 XUSER_PTR (Lisp_Object a)
2377 {
2378 eassert (USER_PTRP (a));
2379 return & XMISC (a)->u_user_ptr;
2380 }
2381 #endif
2382
2383 \f
2384 /* Forwarding pointer to an int variable.
2385 This is allowed only in the value cell of a symbol,
2386 and it means that the symbol's value really lives in the
2387 specified int variable. */
2388 struct Lisp_Intfwd
2389 {
2390 enum Lisp_Fwd_Type type; /* = Lisp_Fwd_Int */
2391 EMACS_INT *intvar;
2392 };
2393
2394 /* Boolean forwarding pointer to an int variable.
2395 This is like Lisp_Intfwd except that the ostensible
2396 "value" of the symbol is t if the bool variable is true,
2397 nil if it is false. */
2398 struct Lisp_Boolfwd
2399 {
2400 enum Lisp_Fwd_Type type; /* = Lisp_Fwd_Bool */
2401 bool *boolvar;
2402 };
2403
2404 /* Forwarding pointer to a Lisp_Object variable.
2405 This is allowed only in the value cell of a symbol,
2406 and it means that the symbol's value really lives in the
2407 specified variable. */
2408 struct Lisp_Objfwd
2409 {
2410 enum Lisp_Fwd_Type type; /* = Lisp_Fwd_Obj */
2411 Lisp_Object *objvar;
2412 };
2413
2414 /* Like Lisp_Objfwd except that value lives in a slot in the
2415 current buffer. Value is byte index of slot within buffer. */
2416 struct Lisp_Buffer_Objfwd
2417 {
2418 enum Lisp_Fwd_Type type; /* = Lisp_Fwd_Buffer_Obj */
2419 int offset;
2420 /* One of Qnil, Qintegerp, Qsymbolp, Qstringp, Qfloatp or Qnumberp. */
2421 Lisp_Object predicate;
2422 };
2423
2424 /* struct Lisp_Buffer_Local_Value is used in a symbol value cell when
2425 the symbol has buffer-local or frame-local bindings. (Exception:
2426 some buffer-local variables are built-in, with their values stored
2427 in the buffer structure itself. They are handled differently,
2428 using struct Lisp_Buffer_Objfwd.)
2429
2430 The `realvalue' slot holds the variable's current value, or a
2431 forwarding pointer to where that value is kept. This value is the
2432 one that corresponds to the loaded binding. To read or set the
2433 variable, you must first make sure the right binding is loaded;
2434 then you can access the value in (or through) `realvalue'.
2435
2436 `buffer' and `frame' are the buffer and frame for which the loaded
2437 binding was found. If those have changed, to make sure the right
2438 binding is loaded it is necessary to find which binding goes with
2439 the current buffer and selected frame, then load it. To load it,
2440 first unload the previous binding, then copy the value of the new
2441 binding into `realvalue' (or through it). Also update
2442 LOADED-BINDING to point to the newly loaded binding.
2443
2444 `local_if_set' indicates that merely setting the variable creates a
2445 local binding for the current buffer. Otherwise the latter, setting
2446 the variable does not do that; only make-local-variable does that. */
2447
2448 struct Lisp_Buffer_Local_Value
2449 {
2450 /* True means that merely setting the variable creates a local
2451 binding for the current buffer. */
2452 bool_bf local_if_set : 1;
2453 /* True means this variable can have frame-local bindings, otherwise, it is
2454 can have buffer-local bindings. The two cannot be combined. */
2455 bool_bf frame_local : 1;
2456 /* True means that the binding now loaded was found.
2457 Presumably equivalent to (defcell!=valcell). */
2458 bool_bf found : 1;
2459 /* If non-NULL, a forwarding to the C var where it should also be set. */
2460 union Lisp_Fwd *fwd; /* Should never be (Buffer|Kboard)_Objfwd. */
2461 /* The buffer or frame for which the loaded binding was found. */
2462 Lisp_Object where;
2463 /* A cons cell that holds the default value. It has the form
2464 (SYMBOL . DEFAULT-VALUE). */
2465 Lisp_Object defcell;
2466 /* The cons cell from `where's parameter alist.
2467 It always has the form (SYMBOL . VALUE)
2468 Note that if `forward' is non-nil, VALUE may be out of date.
2469 Also if the currently loaded binding is the default binding, then
2470 this is `eq'ual to defcell. */
2471 Lisp_Object valcell;
2472 };
2473
2474 /* Like Lisp_Objfwd except that value lives in a slot in the
2475 current kboard. */
2476 struct Lisp_Kboard_Objfwd
2477 {
2478 enum Lisp_Fwd_Type type; /* = Lisp_Fwd_Kboard_Obj */
2479 int offset;
2480 };
2481
2482 union Lisp_Fwd
2483 {
2484 struct Lisp_Intfwd u_intfwd;
2485 struct Lisp_Boolfwd u_boolfwd;
2486 struct Lisp_Objfwd u_objfwd;
2487 struct Lisp_Buffer_Objfwd u_buffer_objfwd;
2488 struct Lisp_Kboard_Objfwd u_kboard_objfwd;
2489 };
2490
2491 INLINE enum Lisp_Fwd_Type
2492 XFWDTYPE (union Lisp_Fwd *a)
2493 {
2494 return a->u_intfwd.type;
2495 }
2496
2497 INLINE struct Lisp_Buffer_Objfwd *
2498 XBUFFER_OBJFWD (union Lisp_Fwd *a)
2499 {
2500 eassert (BUFFER_OBJFWDP (a));
2501 return &a->u_buffer_objfwd;
2502 }
2503 \f
2504 /* Lisp floating point type. */
2505 struct Lisp_Float
2506 {
2507 union
2508 {
2509 double data;
2510 struct Lisp_Float *chain;
2511 } u;
2512 };
2513
2514 INLINE double
2515 XFLOAT_DATA (Lisp_Object f)
2516 {
2517 return XFLOAT (f)->u.data;
2518 }
2519
2520 /* Most hosts nowadays use IEEE floating point, so they use IEC 60559
2521 representations, have infinities and NaNs, and do not trap on
2522 exceptions. Define IEEE_FLOATING_POINT if this host is one of the
2523 typical ones. The C11 macro __STDC_IEC_559__ is close to what is
2524 wanted here, but is not quite right because Emacs does not require
2525 all the features of C11 Annex F (and does not require C11 at all,
2526 for that matter). */
2527 enum
2528 {
2529 IEEE_FLOATING_POINT
2530 = (FLT_RADIX == 2 && FLT_MANT_DIG == 24
2531 && FLT_MIN_EXP == -125 && FLT_MAX_EXP == 128)
2532 };
2533
2534 /* A character, declared with the following typedef, is a member
2535 of some character set associated with the current buffer. */
2536 #ifndef _UCHAR_T /* Protect against something in ctab.h on AIX. */
2537 #define _UCHAR_T
2538 typedef unsigned char UCHAR;
2539 #endif
2540
2541 /* Meanings of slots in a Lisp_Compiled: */
2542
2543 enum Lisp_Compiled
2544 {
2545 COMPILED_ARGLIST = 0,
2546 COMPILED_BYTECODE = 1,
2547 COMPILED_CONSTANTS = 2,
2548 COMPILED_STACK_DEPTH = 3,
2549 COMPILED_DOC_STRING = 4,
2550 COMPILED_INTERACTIVE = 5
2551 };
2552
2553 /* Flag bits in a character. These also get used in termhooks.h.
2554 Richard Stallman <rms@gnu.ai.mit.edu> thinks that MULE
2555 (MUlti-Lingual Emacs) might need 22 bits for the character value
2556 itself, so we probably shouldn't use any bits lower than 0x0400000. */
2557 enum char_bits
2558 {
2559 CHAR_ALT = 0x0400000,
2560 CHAR_SUPER = 0x0800000,
2561 CHAR_HYPER = 0x1000000,
2562 CHAR_SHIFT = 0x2000000,
2563 CHAR_CTL = 0x4000000,
2564 CHAR_META = 0x8000000,
2565
2566 CHAR_MODIFIER_MASK =
2567 CHAR_ALT | CHAR_SUPER | CHAR_HYPER | CHAR_SHIFT | CHAR_CTL | CHAR_META,
2568
2569 /* Actually, the current Emacs uses 22 bits for the character value
2570 itself. */
2571 CHARACTERBITS = 22
2572 };
2573 \f
2574 /* Data type checking. */
2575
2576 /* Checks whether X is null. Must never exit non-locally;
2577 emacs-module.c relies on that. */
2578
2579 INLINE bool
2580 (NILP) (Lisp_Object x)
2581 {
2582 return lisp_h_NILP (x);
2583 }
2584
2585 INLINE bool
2586 NUMBERP (Lisp_Object x)
2587 {
2588 return INTEGERP (x) || FLOATP (x);
2589 }
2590 INLINE bool
2591 NATNUMP (Lisp_Object x)
2592 {
2593 return INTEGERP (x) && 0 <= XINT (x);
2594 }
2595
2596 INLINE bool
2597 RANGED_INTEGERP (intmax_t lo, Lisp_Object x, intmax_t hi)
2598 {
2599 return INTEGERP (x) && lo <= XINT (x) && XINT (x) <= hi;
2600 }
2601
2602 #define TYPE_RANGED_INTEGERP(type, x) \
2603 (INTEGERP (x) \
2604 && (TYPE_SIGNED (type) ? TYPE_MINIMUM (type) <= XINT (x) : 0 <= XINT (x)) \
2605 && XINT (x) <= TYPE_MAXIMUM (type))
2606
2607 INLINE bool
2608 (CONSP) (Lisp_Object x)
2609 {
2610 return lisp_h_CONSP (x);
2611 }
2612 INLINE bool
2613 (FLOATP) (Lisp_Object x)
2614 {
2615 return lisp_h_FLOATP (x);
2616 }
2617 INLINE bool
2618 (MISCP) (Lisp_Object x)
2619 {
2620 return lisp_h_MISCP (x);
2621 }
2622 INLINE bool
2623 (SYMBOLP) (Lisp_Object x)
2624 {
2625 return lisp_h_SYMBOLP (x);
2626 }
2627 INLINE bool
2628 (INTEGERP) (Lisp_Object x)
2629 {
2630 return lisp_h_INTEGERP (x);
2631 }
2632 INLINE bool
2633 (VECTORLIKEP) (Lisp_Object x)
2634 {
2635 return lisp_h_VECTORLIKEP (x);
2636 }
2637 INLINE bool
2638 (MARKERP) (Lisp_Object x)
2639 {
2640 return lisp_h_MARKERP (x);
2641 }
2642
2643 INLINE bool
2644 STRINGP (Lisp_Object x)
2645 {
2646 return XTYPE (x) == Lisp_String;
2647 }
2648 INLINE bool
2649 VECTORP (Lisp_Object x)
2650 {
2651 return VECTORLIKEP (x) && ! (ASIZE (x) & PSEUDOVECTOR_FLAG);
2652 }
2653 INLINE bool
2654 OVERLAYP (Lisp_Object x)
2655 {
2656 return MISCP (x) && XMISCTYPE (x) == Lisp_Misc_Overlay;
2657 }
2658 INLINE bool
2659 SAVE_VALUEP (Lisp_Object x)
2660 {
2661 return MISCP (x) && XMISCTYPE (x) == Lisp_Misc_Save_Value;
2662 }
2663
2664 INLINE bool
2665 FINALIZERP (Lisp_Object x)
2666 {
2667 return MISCP (x) && XMISCTYPE (x) == Lisp_Misc_Finalizer;
2668 }
2669
2670 #ifdef HAVE_MODULES
2671 INLINE bool
2672 USER_PTRP (Lisp_Object x)
2673 {
2674 return MISCP (x) && XMISCTYPE (x) == Lisp_Misc_User_Ptr;
2675 }
2676 #endif
2677
2678 INLINE bool
2679 AUTOLOADP (Lisp_Object x)
2680 {
2681 return CONSP (x) && EQ (Qautoload, XCAR (x));
2682 }
2683
2684 INLINE bool
2685 BUFFER_OBJFWDP (union Lisp_Fwd *a)
2686 {
2687 return XFWDTYPE (a) == Lisp_Fwd_Buffer_Obj;
2688 }
2689
2690 INLINE bool
2691 PSEUDOVECTOR_TYPEP (struct vectorlike_header *a, int code)
2692 {
2693 return ((a->size & (PSEUDOVECTOR_FLAG | PVEC_TYPE_MASK))
2694 == (PSEUDOVECTOR_FLAG | (code << PSEUDOVECTOR_AREA_BITS)));
2695 }
2696
2697 /* True if A is a pseudovector whose code is CODE. */
2698 INLINE bool
2699 PSEUDOVECTORP (Lisp_Object a, int code)
2700 {
2701 if (! VECTORLIKEP (a))
2702 return false;
2703 else
2704 {
2705 /* Converting to struct vectorlike_header * avoids aliasing issues. */
2706 struct vectorlike_header *h = XUNTAG (a, Lisp_Vectorlike);
2707 return PSEUDOVECTOR_TYPEP (h, code);
2708 }
2709 }
2710
2711
2712 /* Test for specific pseudovector types. */
2713
2714 INLINE bool
2715 WINDOW_CONFIGURATIONP (Lisp_Object a)
2716 {
2717 return PSEUDOVECTORP (a, PVEC_WINDOW_CONFIGURATION);
2718 }
2719
2720 INLINE bool
2721 PROCESSP (Lisp_Object a)
2722 {
2723 return PSEUDOVECTORP (a, PVEC_PROCESS);
2724 }
2725
2726 INLINE bool
2727 WINDOWP (Lisp_Object a)
2728 {
2729 return PSEUDOVECTORP (a, PVEC_WINDOW);
2730 }
2731
2732 INLINE bool
2733 TERMINALP (Lisp_Object a)
2734 {
2735 return PSEUDOVECTORP (a, PVEC_TERMINAL);
2736 }
2737
2738 INLINE bool
2739 SUBRP (Lisp_Object a)
2740 {
2741 return PSEUDOVECTORP (a, PVEC_SUBR);
2742 }
2743
2744 INLINE bool
2745 COMPILEDP (Lisp_Object a)
2746 {
2747 return PSEUDOVECTORP (a, PVEC_COMPILED);
2748 }
2749
2750 INLINE bool
2751 BUFFERP (Lisp_Object a)
2752 {
2753 return PSEUDOVECTORP (a, PVEC_BUFFER);
2754 }
2755
2756 INLINE bool
2757 CHAR_TABLE_P (Lisp_Object a)
2758 {
2759 return PSEUDOVECTORP (a, PVEC_CHAR_TABLE);
2760 }
2761
2762 INLINE bool
2763 SUB_CHAR_TABLE_P (Lisp_Object a)
2764 {
2765 return PSEUDOVECTORP (a, PVEC_SUB_CHAR_TABLE);
2766 }
2767
2768 INLINE bool
2769 BOOL_VECTOR_P (Lisp_Object a)
2770 {
2771 return PSEUDOVECTORP (a, PVEC_BOOL_VECTOR);
2772 }
2773
2774 INLINE bool
2775 FRAMEP (Lisp_Object a)
2776 {
2777 return PSEUDOVECTORP (a, PVEC_FRAME);
2778 }
2779
2780 /* Test for image (image . spec) */
2781 INLINE bool
2782 IMAGEP (Lisp_Object x)
2783 {
2784 return CONSP (x) && EQ (XCAR (x), Qimage);
2785 }
2786
2787 /* Array types. */
2788 INLINE bool
2789 ARRAYP (Lisp_Object x)
2790 {
2791 return VECTORP (x) || STRINGP (x) || CHAR_TABLE_P (x) || BOOL_VECTOR_P (x);
2792 }
2793 \f
2794 INLINE void
2795 CHECK_LIST (Lisp_Object x)
2796 {
2797 CHECK_TYPE (CONSP (x) || NILP (x), Qlistp, x);
2798 }
2799
2800 INLINE void
2801 (CHECK_LIST_CONS) (Lisp_Object x, Lisp_Object y)
2802 {
2803 lisp_h_CHECK_LIST_CONS (x, y);
2804 }
2805
2806 INLINE void
2807 (CHECK_SYMBOL) (Lisp_Object x)
2808 {
2809 lisp_h_CHECK_SYMBOL (x);
2810 }
2811
2812 INLINE void
2813 (CHECK_NUMBER) (Lisp_Object x)
2814 {
2815 lisp_h_CHECK_NUMBER (x);
2816 }
2817
2818 INLINE void
2819 CHECK_STRING (Lisp_Object x)
2820 {
2821 CHECK_TYPE (STRINGP (x), Qstringp, x);
2822 }
2823 INLINE void
2824 CHECK_STRING_CAR (Lisp_Object x)
2825 {
2826 CHECK_TYPE (STRINGP (XCAR (x)), Qstringp, XCAR (x));
2827 }
2828 INLINE void
2829 CHECK_CONS (Lisp_Object x)
2830 {
2831 CHECK_TYPE (CONSP (x), Qconsp, x);
2832 }
2833 INLINE void
2834 CHECK_VECTOR (Lisp_Object x)
2835 {
2836 CHECK_TYPE (VECTORP (x), Qvectorp, x);
2837 }
2838 INLINE void
2839 CHECK_BOOL_VECTOR (Lisp_Object x)
2840 {
2841 CHECK_TYPE (BOOL_VECTOR_P (x), Qbool_vector_p, x);
2842 }
2843 /* This is a bit special because we always need size afterwards. */
2844 INLINE ptrdiff_t
2845 CHECK_VECTOR_OR_STRING (Lisp_Object x)
2846 {
2847 if (VECTORP (x))
2848 return ASIZE (x);
2849 if (STRINGP (x))
2850 return SCHARS (x);
2851 wrong_type_argument (Qarrayp, x);
2852 }
2853 INLINE void
2854 CHECK_ARRAY (Lisp_Object x, Lisp_Object predicate)
2855 {
2856 CHECK_TYPE (ARRAYP (x), predicate, x);
2857 }
2858 INLINE void
2859 CHECK_BUFFER (Lisp_Object x)
2860 {
2861 CHECK_TYPE (BUFFERP (x), Qbufferp, x);
2862 }
2863 INLINE void
2864 CHECK_WINDOW (Lisp_Object x)
2865 {
2866 CHECK_TYPE (WINDOWP (x), Qwindowp, x);
2867 }
2868 #ifdef subprocesses
2869 INLINE void
2870 CHECK_PROCESS (Lisp_Object x)
2871 {
2872 CHECK_TYPE (PROCESSP (x), Qprocessp, x);
2873 }
2874 #endif
2875 INLINE void
2876 CHECK_NATNUM (Lisp_Object x)
2877 {
2878 CHECK_TYPE (NATNUMP (x), Qwholenump, x);
2879 }
2880
2881 #define CHECK_RANGED_INTEGER(x, lo, hi) \
2882 do { \
2883 CHECK_NUMBER (x); \
2884 if (! ((lo) <= XINT (x) && XINT (x) <= (hi))) \
2885 args_out_of_range_3 \
2886 (x, \
2887 make_number ((lo) < 0 && (lo) < MOST_NEGATIVE_FIXNUM \
2888 ? MOST_NEGATIVE_FIXNUM \
2889 : (lo)), \
2890 make_number (min (hi, MOST_POSITIVE_FIXNUM))); \
2891 } while (false)
2892 #define CHECK_TYPE_RANGED_INTEGER(type, x) \
2893 do { \
2894 if (TYPE_SIGNED (type)) \
2895 CHECK_RANGED_INTEGER (x, TYPE_MINIMUM (type), TYPE_MAXIMUM (type)); \
2896 else \
2897 CHECK_RANGED_INTEGER (x, 0, TYPE_MAXIMUM (type)); \
2898 } while (false)
2899
2900 #define CHECK_NUMBER_COERCE_MARKER(x) \
2901 do { \
2902 if (MARKERP ((x))) \
2903 XSETFASTINT (x, marker_position (x)); \
2904 else \
2905 CHECK_TYPE (INTEGERP (x), Qinteger_or_marker_p, x); \
2906 } while (false)
2907
2908 INLINE double
2909 XFLOATINT (Lisp_Object n)
2910 {
2911 return extract_float (n);
2912 }
2913
2914 INLINE void
2915 CHECK_NUMBER_OR_FLOAT (Lisp_Object x)
2916 {
2917 CHECK_TYPE (NUMBERP (x), Qnumberp, x);
2918 }
2919
2920 #define CHECK_NUMBER_OR_FLOAT_COERCE_MARKER(x) \
2921 do { \
2922 if (MARKERP (x)) \
2923 XSETFASTINT (x, marker_position (x)); \
2924 else \
2925 CHECK_TYPE (NUMBERP (x), Qnumber_or_marker_p, x); \
2926 } while (false)
2927
2928 /* Since we can't assign directly to the CAR or CDR fields of a cons
2929 cell, use these when checking that those fields contain numbers. */
2930 INLINE void
2931 CHECK_NUMBER_CAR (Lisp_Object x)
2932 {
2933 Lisp_Object tmp = XCAR (x);
2934 CHECK_NUMBER (tmp);
2935 XSETCAR (x, tmp);
2936 }
2937
2938 INLINE void
2939 CHECK_NUMBER_CDR (Lisp_Object x)
2940 {
2941 Lisp_Object tmp = XCDR (x);
2942 CHECK_NUMBER (tmp);
2943 XSETCDR (x, tmp);
2944 }
2945 \f
2946 /* Define a built-in function for calling from Lisp.
2947 `lname' should be the name to give the function in Lisp,
2948 as a null-terminated C string.
2949 `fnname' should be the name of the function in C.
2950 By convention, it starts with F.
2951 `sname' should be the name for the C constant structure
2952 that records information on this function for internal use.
2953 By convention, it should be the same as `fnname' but with S instead of F.
2954 It's too bad that C macros can't compute this from `fnname'.
2955 `minargs' should be a number, the minimum number of arguments allowed.
2956 `maxargs' should be a number, the maximum number of arguments allowed,
2957 or else MANY or UNEVALLED.
2958 MANY means pass a vector of evaluated arguments,
2959 in the form of an integer number-of-arguments
2960 followed by the address of a vector of Lisp_Objects
2961 which contains the argument values.
2962 UNEVALLED means pass the list of unevaluated arguments
2963 `intspec' says how interactive arguments are to be fetched.
2964 If the string starts with a `(', `intspec' is evaluated and the resulting
2965 list is the list of arguments.
2966 If it's a string that doesn't start with `(', the value should follow
2967 the one of the doc string for `interactive'.
2968 A null string means call interactively with no arguments.
2969 `doc' is documentation for the user. */
2970
2971 /* This version of DEFUN declares a function prototype with the right
2972 arguments, so we can catch errors with maxargs at compile-time. */
2973 #ifdef _MSC_VER
2974 #define DEFUN(lname, fnname, sname, minargs, maxargs, intspec, doc) \
2975 Lisp_Object fnname DEFUN_ARGS_ ## maxargs ; \
2976 static struct Lisp_Subr alignas (GCALIGNMENT) sname = \
2977 { { (PVEC_SUBR << PSEUDOVECTOR_AREA_BITS) \
2978 | (sizeof (struct Lisp_Subr) / sizeof (EMACS_INT)) }, \
2979 { (Lisp_Object (__cdecl *)(void))fnname }, \
2980 minargs, maxargs, lname, intspec, 0}; \
2981 Lisp_Object fnname
2982 #else /* not _MSC_VER */
2983 #define DEFUN(lname, fnname, sname, minargs, maxargs, intspec, doc) \
2984 static struct Lisp_Subr alignas (GCALIGNMENT) sname = \
2985 { { PVEC_SUBR << PSEUDOVECTOR_AREA_BITS }, \
2986 { .a ## maxargs = fnname }, \
2987 minargs, maxargs, lname, intspec, 0}; \
2988 Lisp_Object fnname
2989 #endif
2990
2991 /* True if OBJ is a Lisp function. */
2992 INLINE bool
2993 FUNCTIONP (Lisp_Object obj)
2994 {
2995 return functionp (obj);
2996 }
2997
2998 /* defsubr (Sname);
2999 is how we define the symbol for function `name' at start-up time. */
3000 extern void defsubr (struct Lisp_Subr *);
3001
3002 enum maxargs
3003 {
3004 MANY = -2,
3005 UNEVALLED = -1
3006 };
3007
3008 /* Call a function F that accepts many args, passing it ARRAY's elements. */
3009 #define CALLMANY(f, array) (f) (ARRAYELTS (array), array)
3010
3011 /* Call a function F that accepts many args, passing it the remaining args,
3012 E.g., 'return CALLN (Fformat, fmt, text);' is less error-prone than
3013 '{ Lisp_Object a[2]; a[0] = fmt; a[1] = text; return Fformat (2, a); }'.
3014 CALLN is overkill for simple usages like 'Finsert (1, &text);'. */
3015 #define CALLN(f, ...) CALLMANY (f, ((Lisp_Object []) {__VA_ARGS__}))
3016
3017 extern void defvar_lisp (struct Lisp_Objfwd *, const char *, Lisp_Object *);
3018 extern void defvar_lisp_nopro (struct Lisp_Objfwd *, const char *, Lisp_Object *);
3019 extern void defvar_bool (struct Lisp_Boolfwd *, const char *, bool *);
3020 extern void defvar_int (struct Lisp_Intfwd *, const char *, EMACS_INT *);
3021 extern void defvar_kboard (struct Lisp_Kboard_Objfwd *, const char *, int);
3022
3023 /* Macros we use to define forwarded Lisp variables.
3024 These are used in the syms_of_FILENAME functions.
3025
3026 An ordinary (not in buffer_defaults, per-buffer, or per-keyboard)
3027 lisp variable is actually a field in `struct emacs_globals'. The
3028 field's name begins with "f_", which is a convention enforced by
3029 these macros. Each such global has a corresponding #define in
3030 globals.h; the plain name should be used in the code.
3031
3032 E.g., the global "cons_cells_consed" is declared as "int
3033 f_cons_cells_consed" in globals.h, but there is a define:
3034
3035 #define cons_cells_consed globals.f_cons_cells_consed
3036
3037 All C code uses the `cons_cells_consed' name. This is all done
3038 this way to support indirection for multi-threaded Emacs. */
3039
3040 #define DEFVAR_LISP(lname, vname, doc) \
3041 do { \
3042 static struct Lisp_Objfwd o_fwd; \
3043 defvar_lisp (&o_fwd, lname, &globals.f_ ## vname); \
3044 } while (false)
3045 #define DEFVAR_LISP_NOPRO(lname, vname, doc) \
3046 do { \
3047 static struct Lisp_Objfwd o_fwd; \
3048 defvar_lisp_nopro (&o_fwd, lname, &globals.f_ ## vname); \
3049 } while (false)
3050 #define DEFVAR_BOOL(lname, vname, doc) \
3051 do { \
3052 static struct Lisp_Boolfwd b_fwd; \
3053 defvar_bool (&b_fwd, lname, &globals.f_ ## vname); \
3054 } while (false)
3055 #define DEFVAR_INT(lname, vname, doc) \
3056 do { \
3057 static struct Lisp_Intfwd i_fwd; \
3058 defvar_int (&i_fwd, lname, &globals.f_ ## vname); \
3059 } while (false)
3060
3061 #define DEFVAR_BUFFER_DEFAULTS(lname, vname, doc) \
3062 do { \
3063 static struct Lisp_Objfwd o_fwd; \
3064 defvar_lisp_nopro (&o_fwd, lname, &BVAR (&buffer_defaults, vname)); \
3065 } while (false)
3066
3067 #define DEFVAR_KBOARD(lname, vname, doc) \
3068 do { \
3069 static struct Lisp_Kboard_Objfwd ko_fwd; \
3070 defvar_kboard (&ko_fwd, lname, offsetof (KBOARD, vname ## _)); \
3071 } while (false)
3072 \f
3073 /* Save and restore the instruction and environment pointers,
3074 without affecting the signal mask. */
3075
3076 #ifdef HAVE__SETJMP
3077 typedef jmp_buf sys_jmp_buf;
3078 # define sys_setjmp(j) _setjmp (j)
3079 # define sys_longjmp(j, v) _longjmp (j, v)
3080 #elif defined HAVE_SIGSETJMP
3081 typedef sigjmp_buf sys_jmp_buf;
3082 # define sys_setjmp(j) sigsetjmp (j, 0)
3083 # define sys_longjmp(j, v) siglongjmp (j, v)
3084 #else
3085 /* A platform that uses neither _longjmp nor siglongjmp; assume
3086 longjmp does not affect the sigmask. */
3087 typedef jmp_buf sys_jmp_buf;
3088 # define sys_setjmp(j) setjmp (j)
3089 # define sys_longjmp(j, v) longjmp (j, v)
3090 #endif
3091
3092 \f
3093 /* Elisp uses several stacks:
3094 - the C stack.
3095 - the bytecode stack: used internally by the bytecode interpreter.
3096 Allocated from the C stack.
3097 - The specpdl stack: keeps track of active unwind-protect and
3098 dynamic-let-bindings. Allocated from the `specpdl' array, a manually
3099 managed stack.
3100 - The handler stack: keeps track of active catch tags and condition-case
3101 handlers. Allocated in a manually managed stack implemented by a
3102 doubly-linked list allocated via xmalloc and never freed. */
3103
3104 /* Structure for recording Lisp call stack for backtrace purposes. */
3105
3106 /* The special binding stack holds the outer values of variables while
3107 they are bound by a function application or a let form, stores the
3108 code to be executed for unwind-protect forms.
3109
3110 NOTE: The specbinding union is defined here, because SPECPDL_INDEX is
3111 used all over the place, needs to be fast, and needs to know the size of
3112 union specbinding. But only eval.c should access it. */
3113
3114 enum specbind_tag {
3115 SPECPDL_UNWIND, /* An unwind_protect function on Lisp_Object. */
3116 SPECPDL_UNWIND_PTR, /* Likewise, on void *. */
3117 SPECPDL_UNWIND_INT, /* Likewise, on int. */
3118 SPECPDL_UNWIND_VOID, /* Likewise, with no arg. */
3119 SPECPDL_BACKTRACE, /* An element of the backtrace. */
3120 SPECPDL_LET, /* A plain and simple dynamic let-binding. */
3121 /* Tags greater than SPECPDL_LET must be "subkinds" of LET. */
3122 SPECPDL_LET_LOCAL, /* A buffer-local let-binding. */
3123 SPECPDL_LET_DEFAULT /* A global binding for a localized var. */
3124 };
3125
3126 union specbinding
3127 {
3128 ENUM_BF (specbind_tag) kind : CHAR_BIT;
3129 struct {
3130 ENUM_BF (specbind_tag) kind : CHAR_BIT;
3131 void (*func) (Lisp_Object);
3132 Lisp_Object arg;
3133 } unwind;
3134 struct {
3135 ENUM_BF (specbind_tag) kind : CHAR_BIT;
3136 void (*func) (void *);
3137 void *arg;
3138 } unwind_ptr;
3139 struct {
3140 ENUM_BF (specbind_tag) kind : CHAR_BIT;
3141 void (*func) (int);
3142 int arg;
3143 } unwind_int;
3144 struct {
3145 ENUM_BF (specbind_tag) kind : CHAR_BIT;
3146 void (*func) (void);
3147 } unwind_void;
3148 struct {
3149 ENUM_BF (specbind_tag) kind : CHAR_BIT;
3150 /* `where' is not used in the case of SPECPDL_LET. */
3151 Lisp_Object symbol, old_value, where;
3152 } let;
3153 struct {
3154 ENUM_BF (specbind_tag) kind : CHAR_BIT;
3155 bool_bf debug_on_exit : 1;
3156 Lisp_Object function;
3157 Lisp_Object *args;
3158 ptrdiff_t nargs;
3159 } bt;
3160 };
3161
3162 extern union specbinding *specpdl;
3163 extern union specbinding *specpdl_ptr;
3164 extern ptrdiff_t specpdl_size;
3165
3166 INLINE ptrdiff_t
3167 SPECPDL_INDEX (void)
3168 {
3169 return specpdl_ptr - specpdl;
3170 }
3171
3172 /* This structure helps implement the `catch/throw' and `condition-case/signal'
3173 control structures. A struct handler contains all the information needed to
3174 restore the state of the interpreter after a non-local jump.
3175
3176 handler structures are chained together in a doubly linked list; the `next'
3177 member points to the next outer catchtag and the `nextfree' member points in
3178 the other direction to the next inner element (which is typically the next
3179 free element since we mostly use it on the deepest handler).
3180
3181 A call like (throw TAG VAL) searches for a catchtag whose `tag_or_ch'
3182 member is TAG, and then unbinds to it. The `val' member is used to
3183 hold VAL while the stack is unwound; `val' is returned as the value
3184 of the catch form. If there is a handler of type CATCHER_ALL, it will
3185 be treated as a handler for all invocations of `throw'; in this case
3186 `val' will be set to (TAG . VAL).
3187
3188 All the other members are concerned with restoring the interpreter
3189 state.
3190
3191 Members are volatile if their values need to survive _longjmp when
3192 a 'struct handler' is a local variable. */
3193
3194 enum handlertype { CATCHER, CONDITION_CASE, CATCHER_ALL };
3195
3196 struct handler
3197 {
3198 enum handlertype type;
3199 Lisp_Object tag_or_ch;
3200 Lisp_Object val;
3201 struct handler *next;
3202 struct handler *nextfree;
3203
3204 /* The bytecode interpreter can have several handlers active at the same
3205 time, so when we longjmp to one of them, it needs to know which handler
3206 this was and what was the corresponding internal state. This is stored
3207 here, and when we longjmp we make sure that handlerlist points to the
3208 proper handler. */
3209 Lisp_Object *bytecode_top;
3210 int bytecode_dest;
3211
3212 /* Most global vars are reset to their value via the specpdl mechanism,
3213 but a few others are handled by storing their value here. */
3214 sys_jmp_buf jmp;
3215 EMACS_INT lisp_eval_depth;
3216 ptrdiff_t pdlcount;
3217 int poll_suppress_count;
3218 int interrupt_input_blocked;
3219 struct byte_stack *byte_stack;
3220 };
3221
3222 extern Lisp_Object memory_signal_data;
3223
3224 /* An address near the bottom of the stack.
3225 Tells GC how to save a copy of the stack. */
3226 extern char *stack_bottom;
3227
3228 /* Check quit-flag and quit if it is non-nil.
3229 Typing C-g does not directly cause a quit; it only sets Vquit_flag.
3230 So the program needs to do QUIT at times when it is safe to quit.
3231 Every loop that might run for a long time or might not exit
3232 ought to do QUIT at least once, at a safe place.
3233 Unless that is impossible, of course.
3234 But it is very desirable to avoid creating loops where QUIT is impossible.
3235
3236 Exception: if you set immediate_quit to true,
3237 then the handler that responds to the C-g does the quit itself.
3238 This is a good thing to do around a loop that has no side effects
3239 and (in particular) cannot call arbitrary Lisp code.
3240
3241 If quit-flag is set to `kill-emacs' the SIGINT handler has received
3242 a request to exit Emacs when it is safe to do. */
3243
3244 extern void process_pending_signals (void);
3245 extern bool volatile pending_signals;
3246
3247 extern void process_quit_flag (void);
3248 #define QUIT \
3249 do { \
3250 if (!NILP (Vquit_flag) && NILP (Vinhibit_quit)) \
3251 process_quit_flag (); \
3252 else if (pending_signals) \
3253 process_pending_signals (); \
3254 } while (false)
3255
3256
3257 /* True if ought to quit now. */
3258
3259 #define QUITP (!NILP (Vquit_flag) && NILP (Vinhibit_quit))
3260 \f
3261 extern Lisp_Object Vascii_downcase_table;
3262 extern Lisp_Object Vascii_canon_table;
3263 \f
3264 /* Call staticpro (&var) to protect static variable `var'. */
3265
3266 void staticpro (Lisp_Object *);
3267 \f
3268 /* Forward declarations for prototypes. */
3269 struct window;
3270 struct frame;
3271
3272 /* Copy COUNT Lisp_Objects from ARGS to contents of V starting from OFFSET. */
3273
3274 INLINE void
3275 vcopy (Lisp_Object v, ptrdiff_t offset, Lisp_Object *args, ptrdiff_t count)
3276 {
3277 eassert (0 <= offset && 0 <= count && offset + count <= ASIZE (v));
3278 memcpy (XVECTOR (v)->contents + offset, args, count * sizeof *args);
3279 }
3280
3281 /* Functions to modify hash tables. */
3282
3283 INLINE void
3284 set_hash_key_slot (struct Lisp_Hash_Table *h, ptrdiff_t idx, Lisp_Object val)
3285 {
3286 gc_aset (h->key_and_value, 2 * idx, val);
3287 }
3288
3289 INLINE void
3290 set_hash_value_slot (struct Lisp_Hash_Table *h, ptrdiff_t idx, Lisp_Object val)
3291 {
3292 gc_aset (h->key_and_value, 2 * idx + 1, val);
3293 }
3294
3295 /* Use these functions to set Lisp_Object
3296 or pointer slots of struct Lisp_Symbol. */
3297
3298 INLINE void
3299 set_symbol_function (Lisp_Object sym, Lisp_Object function)
3300 {
3301 XSYMBOL (sym)->function = function;
3302 }
3303
3304 INLINE void
3305 set_symbol_plist (Lisp_Object sym, Lisp_Object plist)
3306 {
3307 XSYMBOL (sym)->plist = plist;
3308 }
3309
3310 INLINE void
3311 set_symbol_next (Lisp_Object sym, struct Lisp_Symbol *next)
3312 {
3313 XSYMBOL (sym)->next = next;
3314 }
3315
3316 /* Buffer-local (also frame-local) variable access functions. */
3317
3318 INLINE int
3319 blv_found (struct Lisp_Buffer_Local_Value *blv)
3320 {
3321 eassert (blv->found == !EQ (blv->defcell, blv->valcell));
3322 return blv->found;
3323 }
3324
3325 /* Set overlay's property list. */
3326
3327 INLINE void
3328 set_overlay_plist (Lisp_Object overlay, Lisp_Object plist)
3329 {
3330 XOVERLAY (overlay)->plist = plist;
3331 }
3332
3333 /* Get text properties of S. */
3334
3335 INLINE INTERVAL
3336 string_intervals (Lisp_Object s)
3337 {
3338 return XSTRING (s)->intervals;
3339 }
3340
3341 /* Set text properties of S to I. */
3342
3343 INLINE void
3344 set_string_intervals (Lisp_Object s, INTERVAL i)
3345 {
3346 XSTRING (s)->intervals = i;
3347 }
3348
3349 /* Set a Lisp slot in TABLE to VAL. Most code should use this instead
3350 of setting slots directly. */
3351
3352 INLINE void
3353 set_char_table_defalt (Lisp_Object table, Lisp_Object val)
3354 {
3355 XCHAR_TABLE (table)->defalt = val;
3356 }
3357 INLINE void
3358 set_char_table_purpose (Lisp_Object table, Lisp_Object val)
3359 {
3360 XCHAR_TABLE (table)->purpose = val;
3361 }
3362
3363 /* Set different slots in (sub)character tables. */
3364
3365 INLINE void
3366 set_char_table_extras (Lisp_Object table, ptrdiff_t idx, Lisp_Object val)
3367 {
3368 eassert (0 <= idx && idx < CHAR_TABLE_EXTRA_SLOTS (XCHAR_TABLE (table)));
3369 XCHAR_TABLE (table)->extras[idx] = val;
3370 }
3371
3372 INLINE void
3373 set_char_table_contents (Lisp_Object table, ptrdiff_t idx, Lisp_Object val)
3374 {
3375 eassert (0 <= idx && idx < (1 << CHARTAB_SIZE_BITS_0));
3376 XCHAR_TABLE (table)->contents[idx] = val;
3377 }
3378
3379 INLINE void
3380 set_sub_char_table_contents (Lisp_Object table, ptrdiff_t idx, Lisp_Object val)
3381 {
3382 XSUB_CHAR_TABLE (table)->contents[idx] = val;
3383 }
3384
3385 /* Defined in data.c. */
3386 extern Lisp_Object indirect_function (Lisp_Object);
3387 extern Lisp_Object find_symbol_value (Lisp_Object);
3388 enum Arith_Comparison {
3389 ARITH_EQUAL,
3390 ARITH_NOTEQUAL,
3391 ARITH_LESS,
3392 ARITH_GRTR,
3393 ARITH_LESS_OR_EQUAL,
3394 ARITH_GRTR_OR_EQUAL
3395 };
3396 extern Lisp_Object arithcompare (Lisp_Object num1, Lisp_Object num2,
3397 enum Arith_Comparison comparison);
3398
3399 /* Convert the integer I to an Emacs representation, either the integer
3400 itself, or a cons of two or three integers, or if all else fails a float.
3401 I should not have side effects. */
3402 #define INTEGER_TO_CONS(i) \
3403 (! FIXNUM_OVERFLOW_P (i) \
3404 ? make_number (i) \
3405 : EXPR_SIGNED (i) ? intbig_to_lisp (i) : uintbig_to_lisp (i))
3406 extern Lisp_Object intbig_to_lisp (intmax_t);
3407 extern Lisp_Object uintbig_to_lisp (uintmax_t);
3408
3409 /* Convert the Emacs representation CONS back to an integer of type
3410 TYPE, storing the result the variable VAR. Signal an error if CONS
3411 is not a valid representation or is out of range for TYPE. */
3412 #define CONS_TO_INTEGER(cons, type, var) \
3413 (TYPE_SIGNED (type) \
3414 ? ((var) = cons_to_signed (cons, TYPE_MINIMUM (type), TYPE_MAXIMUM (type))) \
3415 : ((var) = cons_to_unsigned (cons, TYPE_MAXIMUM (type))))
3416 extern intmax_t cons_to_signed (Lisp_Object, intmax_t, intmax_t);
3417 extern uintmax_t cons_to_unsigned (Lisp_Object, uintmax_t);
3418
3419 extern struct Lisp_Symbol *indirect_variable (struct Lisp_Symbol *);
3420 extern _Noreturn void args_out_of_range (Lisp_Object, Lisp_Object);
3421 extern _Noreturn void args_out_of_range_3 (Lisp_Object, Lisp_Object,
3422 Lisp_Object);
3423 extern Lisp_Object do_symval_forwarding (union Lisp_Fwd *);
3424 extern void set_internal (Lisp_Object, Lisp_Object, Lisp_Object, bool);
3425 extern void syms_of_data (void);
3426 extern void swap_in_global_binding (struct Lisp_Symbol *);
3427
3428 /* Defined in cmds.c */
3429 extern void syms_of_cmds (void);
3430 extern void keys_of_cmds (void);
3431
3432 /* Defined in coding.c. */
3433 extern Lisp_Object detect_coding_system (const unsigned char *, ptrdiff_t,
3434 ptrdiff_t, bool, bool, Lisp_Object);
3435 extern void init_coding (void);
3436 extern void init_coding_once (void);
3437 extern void syms_of_coding (void);
3438
3439 /* Defined in character.c. */
3440 extern ptrdiff_t chars_in_text (const unsigned char *, ptrdiff_t);
3441 extern ptrdiff_t multibyte_chars_in_text (const unsigned char *, ptrdiff_t);
3442 extern void syms_of_character (void);
3443
3444 /* Defined in charset.c. */
3445 extern void init_charset (void);
3446 extern void init_charset_once (void);
3447 extern void syms_of_charset (void);
3448 /* Structure forward declarations. */
3449 struct charset;
3450
3451 /* Defined in syntax.c. */
3452 extern void init_syntax_once (void);
3453 extern void syms_of_syntax (void);
3454
3455 /* Defined in fns.c. */
3456 enum { NEXT_ALMOST_PRIME_LIMIT = 11 };
3457 extern EMACS_INT next_almost_prime (EMACS_INT) ATTRIBUTE_CONST;
3458 extern Lisp_Object larger_vector (Lisp_Object, ptrdiff_t, ptrdiff_t);
3459 extern void sweep_weak_hash_tables (void);
3460 EMACS_UINT hash_string (char const *, ptrdiff_t);
3461 EMACS_UINT sxhash (Lisp_Object, int);
3462 Lisp_Object make_hash_table (struct hash_table_test, Lisp_Object, Lisp_Object,
3463 Lisp_Object, Lisp_Object);
3464 ptrdiff_t hash_lookup (struct Lisp_Hash_Table *, Lisp_Object, EMACS_UINT *);
3465 ptrdiff_t hash_put (struct Lisp_Hash_Table *, Lisp_Object, Lisp_Object,
3466 EMACS_UINT);
3467 void hash_remove_from_table (struct Lisp_Hash_Table *, Lisp_Object);
3468 extern struct hash_table_test hashtest_eq, hashtest_eql, hashtest_equal;
3469 extern void validate_subarray (Lisp_Object, Lisp_Object, Lisp_Object,
3470 ptrdiff_t, ptrdiff_t *, ptrdiff_t *);
3471 extern Lisp_Object substring_both (Lisp_Object, ptrdiff_t, ptrdiff_t,
3472 ptrdiff_t, ptrdiff_t);
3473 extern Lisp_Object merge (Lisp_Object, Lisp_Object, Lisp_Object);
3474 extern Lisp_Object do_yes_or_no_p (Lisp_Object);
3475 extern Lisp_Object concat2 (Lisp_Object, Lisp_Object);
3476 extern Lisp_Object concat3 (Lisp_Object, Lisp_Object, Lisp_Object);
3477 extern Lisp_Object nconc2 (Lisp_Object, Lisp_Object);
3478 extern Lisp_Object assq_no_quit (Lisp_Object, Lisp_Object);
3479 extern Lisp_Object assoc_no_quit (Lisp_Object, Lisp_Object);
3480 extern void clear_string_char_byte_cache (void);
3481 extern ptrdiff_t string_char_to_byte (Lisp_Object, ptrdiff_t);
3482 extern ptrdiff_t string_byte_to_char (Lisp_Object, ptrdiff_t);
3483 extern Lisp_Object string_to_multibyte (Lisp_Object);
3484 extern Lisp_Object string_make_unibyte (Lisp_Object);
3485 extern void syms_of_fns (void);
3486
3487 /* Defined in floatfns.c. */
3488 extern void syms_of_floatfns (void);
3489 extern Lisp_Object fmod_float (Lisp_Object x, Lisp_Object y);
3490
3491 /* Defined in fringe.c. */
3492 extern void syms_of_fringe (void);
3493 extern void init_fringe (void);
3494 #ifdef HAVE_WINDOW_SYSTEM
3495 extern void mark_fringe_data (void);
3496 extern void init_fringe_once (void);
3497 #endif /* HAVE_WINDOW_SYSTEM */
3498
3499 /* Defined in image.c. */
3500 extern int x_bitmap_mask (struct frame *, ptrdiff_t);
3501 extern void reset_image_types (void);
3502 extern void syms_of_image (void);
3503
3504 /* Defined in insdel.c. */
3505 extern void move_gap_both (ptrdiff_t, ptrdiff_t);
3506 extern _Noreturn void buffer_overflow (void);
3507 extern void make_gap (ptrdiff_t);
3508 extern void make_gap_1 (struct buffer *, ptrdiff_t);
3509 extern ptrdiff_t copy_text (const unsigned char *, unsigned char *,
3510 ptrdiff_t, bool, bool);
3511 extern int count_combining_before (const unsigned char *,
3512 ptrdiff_t, ptrdiff_t, ptrdiff_t);
3513 extern int count_combining_after (const unsigned char *,
3514 ptrdiff_t, ptrdiff_t, ptrdiff_t);
3515 extern void insert (const char *, ptrdiff_t);
3516 extern void insert_and_inherit (const char *, ptrdiff_t);
3517 extern void insert_1_both (const char *, ptrdiff_t, ptrdiff_t,
3518 bool, bool, bool);
3519 extern void insert_from_gap (ptrdiff_t, ptrdiff_t, bool text_at_gap_tail);
3520 extern void insert_from_string (Lisp_Object, ptrdiff_t, ptrdiff_t,
3521 ptrdiff_t, ptrdiff_t, bool);
3522 extern void insert_from_buffer (struct buffer *, ptrdiff_t, ptrdiff_t, bool);
3523 extern void insert_char (int);
3524 extern void insert_string (const char *);
3525 extern void insert_before_markers (const char *, ptrdiff_t);
3526 extern void insert_before_markers_and_inherit (const char *, ptrdiff_t);
3527 extern void insert_from_string_before_markers (Lisp_Object, ptrdiff_t,
3528 ptrdiff_t, ptrdiff_t,
3529 ptrdiff_t, bool);
3530 extern void del_range (ptrdiff_t, ptrdiff_t);
3531 extern Lisp_Object del_range_1 (ptrdiff_t, ptrdiff_t, bool, bool);
3532 extern void del_range_byte (ptrdiff_t, ptrdiff_t, bool);
3533 extern void del_range_both (ptrdiff_t, ptrdiff_t, ptrdiff_t, ptrdiff_t, bool);
3534 extern Lisp_Object del_range_2 (ptrdiff_t, ptrdiff_t,
3535 ptrdiff_t, ptrdiff_t, bool);
3536 extern void modify_text (ptrdiff_t, ptrdiff_t);
3537 extern void prepare_to_modify_buffer (ptrdiff_t, ptrdiff_t, ptrdiff_t *);
3538 extern void prepare_to_modify_buffer_1 (ptrdiff_t, ptrdiff_t, ptrdiff_t *);
3539 extern void invalidate_buffer_caches (struct buffer *, ptrdiff_t, ptrdiff_t);
3540 extern void signal_after_change (ptrdiff_t, ptrdiff_t, ptrdiff_t);
3541 extern void adjust_after_insert (ptrdiff_t, ptrdiff_t, ptrdiff_t,
3542 ptrdiff_t, ptrdiff_t);
3543 extern void adjust_markers_for_delete (ptrdiff_t, ptrdiff_t,
3544 ptrdiff_t, ptrdiff_t);
3545 extern void replace_range (ptrdiff_t, ptrdiff_t, Lisp_Object, bool, bool, bool);
3546 extern void replace_range_2 (ptrdiff_t, ptrdiff_t, ptrdiff_t, ptrdiff_t,
3547 const char *, ptrdiff_t, ptrdiff_t, bool);
3548 extern void syms_of_insdel (void);
3549
3550 /* Defined in dispnew.c. */
3551 #if (defined PROFILING \
3552 && (defined __FreeBSD__ || defined GNU_LINUX || defined __MINGW32__))
3553 _Noreturn void __executable_start (void);
3554 #endif
3555 extern Lisp_Object Vwindow_system;
3556 extern Lisp_Object sit_for (Lisp_Object, bool, int);
3557
3558 /* Defined in xdisp.c. */
3559 extern bool noninteractive_need_newline;
3560 extern Lisp_Object echo_area_buffer[2];
3561 extern void add_to_log (char const *, ...);
3562 extern void vadd_to_log (char const *, va_list);
3563 extern void check_message_stack (void);
3564 extern void setup_echo_area_for_printing (bool);
3565 extern bool push_message (void);
3566 extern void pop_message_unwind (void);
3567 extern Lisp_Object restore_message_unwind (Lisp_Object);
3568 extern void restore_message (void);
3569 extern Lisp_Object current_message (void);
3570 extern void clear_message (bool, bool);
3571 extern void message (const char *, ...) ATTRIBUTE_FORMAT_PRINTF (1, 2);
3572 extern void message1 (const char *);
3573 extern void message1_nolog (const char *);
3574 extern void message3 (Lisp_Object);
3575 extern void message3_nolog (Lisp_Object);
3576 extern void message_dolog (const char *, ptrdiff_t, bool, bool);
3577 extern void message_with_string (const char *, Lisp_Object, bool);
3578 extern void message_log_maybe_newline (void);
3579 extern void update_echo_area (void);
3580 extern void truncate_echo_area (ptrdiff_t);
3581 extern void redisplay (void);
3582
3583 void set_frame_cursor_types (struct frame *, Lisp_Object);
3584 extern void syms_of_xdisp (void);
3585 extern void init_xdisp (void);
3586 extern Lisp_Object safe_eval (Lisp_Object);
3587 extern bool pos_visible_p (struct window *, ptrdiff_t, int *,
3588 int *, int *, int *, int *, int *);
3589
3590 /* Defined in xsettings.c. */
3591 extern void syms_of_xsettings (void);
3592
3593 /* Defined in vm-limit.c. */
3594 extern void memory_warnings (void *, void (*warnfun) (const char *));
3595
3596 /* Defined in character.c. */
3597 extern void parse_str_as_multibyte (const unsigned char *, ptrdiff_t,
3598 ptrdiff_t *, ptrdiff_t *);
3599
3600 /* Defined in alloc.c. */
3601 extern void check_pure_size (void);
3602 extern void free_misc (Lisp_Object);
3603 extern void allocate_string_data (struct Lisp_String *, EMACS_INT, EMACS_INT);
3604 extern void malloc_warning (const char *);
3605 extern _Noreturn void memory_full (size_t);
3606 extern _Noreturn void buffer_memory_full (ptrdiff_t);
3607 extern bool survives_gc_p (Lisp_Object);
3608 extern void mark_object (Lisp_Object);
3609 #if defined REL_ALLOC && !defined SYSTEM_MALLOC && !defined HYBRID_MALLOC
3610 extern void refill_memory_reserve (void);
3611 #endif
3612 extern const char *pending_malloc_warning;
3613 extern Lisp_Object zero_vector;
3614 extern Lisp_Object *stack_base;
3615 extern EMACS_INT consing_since_gc;
3616 extern EMACS_INT gc_relative_threshold;
3617 extern EMACS_INT memory_full_cons_threshold;
3618 extern Lisp_Object list1 (Lisp_Object);
3619 extern Lisp_Object list2 (Lisp_Object, Lisp_Object);
3620 extern Lisp_Object list3 (Lisp_Object, Lisp_Object, Lisp_Object);
3621 extern Lisp_Object list4 (Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object);
3622 extern Lisp_Object list5 (Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object,
3623 Lisp_Object);
3624 enum constype {CONSTYPE_HEAP, CONSTYPE_PURE};
3625 extern Lisp_Object listn (enum constype, ptrdiff_t, Lisp_Object, ...);
3626
3627 /* Build a frequently used 2/3/4-integer lists. */
3628
3629 INLINE Lisp_Object
3630 list2i (EMACS_INT x, EMACS_INT y)
3631 {
3632 return list2 (make_number (x), make_number (y));
3633 }
3634
3635 INLINE Lisp_Object
3636 list3i (EMACS_INT x, EMACS_INT y, EMACS_INT w)
3637 {
3638 return list3 (make_number (x), make_number (y), make_number (w));
3639 }
3640
3641 INLINE Lisp_Object
3642 list4i (EMACS_INT x, EMACS_INT y, EMACS_INT w, EMACS_INT h)
3643 {
3644 return list4 (make_number (x), make_number (y),
3645 make_number (w), make_number (h));
3646 }
3647
3648 extern Lisp_Object make_uninit_bool_vector (EMACS_INT);
3649 extern Lisp_Object bool_vector_fill (Lisp_Object, Lisp_Object);
3650 extern _Noreturn void string_overflow (void);
3651 extern Lisp_Object make_string (const char *, ptrdiff_t);
3652 extern Lisp_Object make_formatted_string (char *, const char *, ...)
3653 ATTRIBUTE_FORMAT_PRINTF (2, 3);
3654 extern Lisp_Object make_unibyte_string (const char *, ptrdiff_t);
3655
3656 /* Make unibyte string from C string when the length isn't known. */
3657
3658 INLINE Lisp_Object
3659 build_unibyte_string (const char *str)
3660 {
3661 return make_unibyte_string (str, strlen (str));
3662 }
3663
3664 extern Lisp_Object make_multibyte_string (const char *, ptrdiff_t, ptrdiff_t);
3665 extern Lisp_Object make_event_array (ptrdiff_t, Lisp_Object *);
3666 extern Lisp_Object make_uninit_string (EMACS_INT);
3667 extern Lisp_Object make_uninit_multibyte_string (EMACS_INT, EMACS_INT);
3668 extern Lisp_Object make_string_from_bytes (const char *, ptrdiff_t, ptrdiff_t);
3669 extern Lisp_Object make_specified_string (const char *,
3670 ptrdiff_t, ptrdiff_t, bool);
3671 extern Lisp_Object make_pure_string (const char *, ptrdiff_t, ptrdiff_t, bool);
3672 extern Lisp_Object make_pure_c_string (const char *, ptrdiff_t);
3673
3674 /* Make a string allocated in pure space, use STR as string data. */
3675
3676 INLINE Lisp_Object
3677 build_pure_c_string (const char *str)
3678 {
3679 return make_pure_c_string (str, strlen (str));
3680 }
3681
3682 /* Make a string from the data at STR, treating it as multibyte if the
3683 data warrants. */
3684
3685 INLINE Lisp_Object
3686 build_string (const char *str)
3687 {
3688 return make_string (str, strlen (str));
3689 }
3690
3691 extern Lisp_Object pure_cons (Lisp_Object, Lisp_Object);
3692 extern void make_byte_code (struct Lisp_Vector *);
3693 extern struct Lisp_Vector *allocate_vector (EMACS_INT);
3694
3695 /* Make an uninitialized vector for SIZE objects. NOTE: you must
3696 be sure that GC cannot happen until the vector is completely
3697 initialized. E.g. the following code is likely to crash:
3698
3699 v = make_uninit_vector (3);
3700 ASET (v, 0, obj0);
3701 ASET (v, 1, Ffunction_can_gc ());
3702 ASET (v, 2, obj1); */
3703
3704 INLINE Lisp_Object
3705 make_uninit_vector (ptrdiff_t size)
3706 {
3707 Lisp_Object v;
3708 struct Lisp_Vector *p;
3709
3710 p = allocate_vector (size);
3711 XSETVECTOR (v, p);
3712 return v;
3713 }
3714
3715 /* Like above, but special for sub char-tables. */
3716
3717 INLINE Lisp_Object
3718 make_uninit_sub_char_table (int depth, int min_char)
3719 {
3720 int slots = SUB_CHAR_TABLE_OFFSET + chartab_size[depth];
3721 Lisp_Object v = make_uninit_vector (slots);
3722
3723 XSETPVECTYPE (XVECTOR (v), PVEC_SUB_CHAR_TABLE);
3724 XSUB_CHAR_TABLE (v)->depth = depth;
3725 XSUB_CHAR_TABLE (v)->min_char = min_char;
3726 return v;
3727 }
3728
3729 extern struct Lisp_Vector *allocate_pseudovector (int, int, int,
3730 enum pvec_type);
3731
3732 /* Allocate partially initialized pseudovector where all Lisp_Object
3733 slots are set to Qnil but the rest (if any) is left uninitialized. */
3734
3735 #define ALLOCATE_PSEUDOVECTOR(type, field, tag) \
3736 ((type *) allocate_pseudovector (VECSIZE (type), \
3737 PSEUDOVECSIZE (type, field), \
3738 PSEUDOVECSIZE (type, field), tag))
3739
3740 /* Allocate fully initialized pseudovector where all Lisp_Object
3741 slots are set to Qnil and the rest (if any) is zeroed. */
3742
3743 #define ALLOCATE_ZEROED_PSEUDOVECTOR(type, field, tag) \
3744 ((type *) allocate_pseudovector (VECSIZE (type), \
3745 PSEUDOVECSIZE (type, field), \
3746 VECSIZE (type), tag))
3747
3748 extern bool gc_in_progress;
3749 extern bool abort_on_gc;
3750 extern Lisp_Object make_float (double);
3751 extern void display_malloc_warning (void);
3752 extern ptrdiff_t inhibit_garbage_collection (void);
3753 extern Lisp_Object make_save_int_int_int (ptrdiff_t, ptrdiff_t, ptrdiff_t);
3754 extern Lisp_Object make_save_obj_obj_obj_obj (Lisp_Object, Lisp_Object,
3755 Lisp_Object, Lisp_Object);
3756 extern Lisp_Object make_save_ptr (void *);
3757 extern Lisp_Object make_save_ptr_int (void *, ptrdiff_t);
3758 extern Lisp_Object make_save_ptr_ptr (void *, void *);
3759 extern Lisp_Object make_save_funcptr_ptr_obj (void (*) (void), void *,
3760 Lisp_Object);
3761 extern Lisp_Object make_save_memory (Lisp_Object *, ptrdiff_t);
3762 extern void free_save_value (Lisp_Object);
3763 extern Lisp_Object build_overlay (Lisp_Object, Lisp_Object, Lisp_Object);
3764 extern void free_marker (Lisp_Object);
3765 extern void free_cons (struct Lisp_Cons *);
3766 extern void init_alloc_once (void);
3767 extern void init_alloc (void);
3768 extern void syms_of_alloc (void);
3769 extern struct buffer * allocate_buffer (void);
3770 extern int valid_lisp_object_p (Lisp_Object);
3771 #ifdef GC_CHECK_CONS_LIST
3772 extern void check_cons_list (void);
3773 #else
3774 INLINE void (check_cons_list) (void) { lisp_h_check_cons_list (); }
3775 #endif
3776
3777 #ifdef REL_ALLOC
3778 /* Defined in ralloc.c. */
3779 extern void *r_alloc (void **, size_t) ATTRIBUTE_ALLOC_SIZE ((2));
3780 extern void r_alloc_free (void **);
3781 extern void *r_re_alloc (void **, size_t) ATTRIBUTE_ALLOC_SIZE ((2));
3782 extern void r_alloc_reset_variable (void **, void **);
3783 extern void r_alloc_inhibit_buffer_relocation (int);
3784 #endif
3785
3786 /* Defined in chartab.c. */
3787 extern Lisp_Object copy_char_table (Lisp_Object);
3788 extern Lisp_Object char_table_ref_and_range (Lisp_Object, int,
3789 int *, int *);
3790 extern void char_table_set_range (Lisp_Object, int, int, Lisp_Object);
3791 extern void map_char_table (void (*) (Lisp_Object, Lisp_Object,
3792 Lisp_Object),
3793 Lisp_Object, Lisp_Object, Lisp_Object);
3794 extern void map_char_table_for_charset (void (*c_function) (Lisp_Object, Lisp_Object),
3795 Lisp_Object, Lisp_Object,
3796 Lisp_Object, struct charset *,
3797 unsigned, unsigned);
3798 extern Lisp_Object uniprop_table (Lisp_Object);
3799 extern void syms_of_chartab (void);
3800
3801 /* Defined in print.c. */
3802 extern Lisp_Object Vprin1_to_string_buffer;
3803 extern void debug_print (Lisp_Object) EXTERNALLY_VISIBLE;
3804 extern void temp_output_buffer_setup (const char *);
3805 extern int print_level;
3806 extern void write_string (const char *);
3807 extern void print_error_message (Lisp_Object, Lisp_Object, const char *,
3808 Lisp_Object);
3809 extern Lisp_Object internal_with_output_to_temp_buffer
3810 (const char *, Lisp_Object (*) (Lisp_Object), Lisp_Object);
3811 #define FLOAT_TO_STRING_BUFSIZE 350
3812 extern int float_to_string (char *, double);
3813 extern void init_print_once (void);
3814 extern void syms_of_print (void);
3815
3816 /* Defined in doprnt.c. */
3817 extern ptrdiff_t doprnt (char *, ptrdiff_t, const char *, const char *,
3818 va_list);
3819 extern ptrdiff_t esprintf (char *, char const *, ...)
3820 ATTRIBUTE_FORMAT_PRINTF (2, 3);
3821 extern ptrdiff_t exprintf (char **, ptrdiff_t *, char const *, ptrdiff_t,
3822 char const *, ...)
3823 ATTRIBUTE_FORMAT_PRINTF (5, 6);
3824 extern ptrdiff_t evxprintf (char **, ptrdiff_t *, char const *, ptrdiff_t,
3825 char const *, va_list)
3826 ATTRIBUTE_FORMAT_PRINTF (5, 0);
3827
3828 /* Defined in lread.c. */
3829 extern Lisp_Object check_obarray (Lisp_Object);
3830 extern Lisp_Object intern_1 (const char *, ptrdiff_t);
3831 extern Lisp_Object intern_c_string_1 (const char *, ptrdiff_t);
3832 extern Lisp_Object intern_driver (Lisp_Object, Lisp_Object, Lisp_Object);
3833 extern void init_symbol (Lisp_Object, Lisp_Object);
3834 extern Lisp_Object oblookup (Lisp_Object, const char *, ptrdiff_t, ptrdiff_t);
3835 INLINE void
3836 LOADHIST_ATTACH (Lisp_Object x)
3837 {
3838 if (initialized)
3839 Vcurrent_load_list = Fcons (x, Vcurrent_load_list);
3840 }
3841 extern int openp (Lisp_Object, Lisp_Object, Lisp_Object,
3842 Lisp_Object *, Lisp_Object, bool);
3843 extern Lisp_Object string_to_number (char const *, int, bool);
3844 extern void map_obarray (Lisp_Object, void (*) (Lisp_Object, Lisp_Object),
3845 Lisp_Object);
3846 extern void dir_warning (const char *, Lisp_Object);
3847 extern void init_obarray (void);
3848 extern void init_lread (void);
3849 extern void syms_of_lread (void);
3850
3851 INLINE Lisp_Object
3852 intern (const char *str)
3853 {
3854 return intern_1 (str, strlen (str));
3855 }
3856
3857 INLINE Lisp_Object
3858 intern_c_string (const char *str)
3859 {
3860 return intern_c_string_1 (str, strlen (str));
3861 }
3862
3863 /* Defined in eval.c. */
3864 extern Lisp_Object Vautoload_queue;
3865 extern Lisp_Object Vrun_hooks;
3866 extern Lisp_Object Vsignaling_function;
3867 extern Lisp_Object inhibit_lisp_code;
3868 extern struct handler *handlerlist;
3869
3870 /* To run a normal hook, use the appropriate function from the list below.
3871 The calling convention:
3872
3873 if (!NILP (Vrun_hooks))
3874 call1 (Vrun_hooks, Qmy_funny_hook);
3875
3876 should no longer be used. */
3877 extern void run_hook (Lisp_Object);
3878 extern void run_hook_with_args_2 (Lisp_Object, Lisp_Object, Lisp_Object);
3879 extern Lisp_Object run_hook_with_args (ptrdiff_t nargs, Lisp_Object *args,
3880 Lisp_Object (*funcall)
3881 (ptrdiff_t nargs, Lisp_Object *args));
3882 extern _Noreturn void xsignal (Lisp_Object, Lisp_Object);
3883 extern _Noreturn void xsignal0 (Lisp_Object);
3884 extern _Noreturn void xsignal1 (Lisp_Object, Lisp_Object);
3885 extern _Noreturn void xsignal2 (Lisp_Object, Lisp_Object, Lisp_Object);
3886 extern _Noreturn void xsignal3 (Lisp_Object, Lisp_Object, Lisp_Object,
3887 Lisp_Object);
3888 extern _Noreturn void signal_error (const char *, Lisp_Object);
3889 extern Lisp_Object eval_sub (Lisp_Object form);
3890 extern Lisp_Object apply1 (Lisp_Object, Lisp_Object);
3891 extern Lisp_Object call0 (Lisp_Object);
3892 extern Lisp_Object call1 (Lisp_Object, Lisp_Object);
3893 extern Lisp_Object call2 (Lisp_Object, Lisp_Object, Lisp_Object);
3894 extern Lisp_Object call3 (Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object);
3895 extern Lisp_Object call4 (Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object);
3896 extern Lisp_Object call5 (Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object);
3897 extern Lisp_Object call6 (Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object);
3898 extern Lisp_Object call7 (Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object);
3899 extern Lisp_Object internal_catch (Lisp_Object, Lisp_Object (*) (Lisp_Object), Lisp_Object);
3900 extern Lisp_Object internal_lisp_condition_case (Lisp_Object, Lisp_Object, Lisp_Object);
3901 extern Lisp_Object internal_condition_case (Lisp_Object (*) (void), Lisp_Object, Lisp_Object (*) (Lisp_Object));
3902 extern Lisp_Object internal_condition_case_1 (Lisp_Object (*) (Lisp_Object), Lisp_Object, Lisp_Object, Lisp_Object (*) (Lisp_Object));
3903 extern Lisp_Object internal_condition_case_2 (Lisp_Object (*) (Lisp_Object, Lisp_Object), Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object (*) (Lisp_Object));
3904 extern Lisp_Object internal_condition_case_n
3905 (Lisp_Object (*) (ptrdiff_t, Lisp_Object *), ptrdiff_t, Lisp_Object *,
3906 Lisp_Object, Lisp_Object (*) (Lisp_Object, ptrdiff_t, Lisp_Object *));
3907 extern struct handler *push_handler (Lisp_Object, enum handlertype);
3908 extern struct handler *push_handler_nosignal (Lisp_Object, enum handlertype);
3909 extern void specbind (Lisp_Object, Lisp_Object);
3910 extern void record_unwind_protect (void (*) (Lisp_Object), Lisp_Object);
3911 extern void record_unwind_protect_ptr (void (*) (void *), void *);
3912 extern void record_unwind_protect_int (void (*) (int), int);
3913 extern void record_unwind_protect_void (void (*) (void));
3914 extern void record_unwind_protect_nothing (void);
3915 extern void clear_unwind_protect (ptrdiff_t);
3916 extern void set_unwind_protect (ptrdiff_t, void (*) (Lisp_Object), Lisp_Object);
3917 extern void set_unwind_protect_ptr (ptrdiff_t, void (*) (void *), void *);
3918 extern Lisp_Object unbind_to (ptrdiff_t, Lisp_Object);
3919 extern _Noreturn void error (const char *, ...) ATTRIBUTE_FORMAT_PRINTF (1, 2);
3920 extern _Noreturn void verror (const char *, va_list)
3921 ATTRIBUTE_FORMAT_PRINTF (1, 0);
3922 extern void un_autoload (Lisp_Object);
3923 extern Lisp_Object call_debugger (Lisp_Object arg);
3924 extern void *near_C_stack_top (void);
3925 extern void init_eval_once (void);
3926 extern Lisp_Object safe_call (ptrdiff_t, Lisp_Object, ...);
3927 extern Lisp_Object safe_call1 (Lisp_Object, Lisp_Object);
3928 extern Lisp_Object safe_call2 (Lisp_Object, Lisp_Object, Lisp_Object);
3929 extern void init_eval (void);
3930 extern void syms_of_eval (void);
3931 extern void unwind_body (Lisp_Object);
3932 extern ptrdiff_t record_in_backtrace (Lisp_Object, Lisp_Object *, ptrdiff_t);
3933 extern void mark_specpdl (void);
3934 extern void get_backtrace (Lisp_Object array);
3935 Lisp_Object backtrace_top_function (void);
3936 extern bool let_shadows_buffer_binding_p (struct Lisp_Symbol *symbol);
3937 extern bool let_shadows_global_binding_p (Lisp_Object symbol);
3938
3939 #ifdef HAVE_MODULES
3940 /* Defined in alloc.c. */
3941 extern Lisp_Object make_user_ptr (void (*finalizer) (void*), void *p);
3942
3943 /* Defined in emacs-module.c. */
3944 extern void module_init (void);
3945 extern void syms_of_module (void);
3946 #endif
3947
3948 /* Defined in editfns.c. */
3949 extern void insert1 (Lisp_Object);
3950 extern Lisp_Object save_excursion_save (void);
3951 extern Lisp_Object save_restriction_save (void);
3952 extern void save_excursion_restore (Lisp_Object);
3953 extern void save_restriction_restore (Lisp_Object);
3954 extern _Noreturn void time_overflow (void);
3955 extern Lisp_Object make_buffer_string (ptrdiff_t, ptrdiff_t, bool);
3956 extern Lisp_Object make_buffer_string_both (ptrdiff_t, ptrdiff_t, ptrdiff_t,
3957 ptrdiff_t, bool);
3958 extern void init_editfns (bool);
3959 extern void syms_of_editfns (void);
3960
3961 /* Defined in buffer.c. */
3962 extern bool mouse_face_overlay_overlaps (Lisp_Object);
3963 extern _Noreturn void nsberror (Lisp_Object);
3964 extern void adjust_overlays_for_insert (ptrdiff_t, ptrdiff_t);
3965 extern void adjust_overlays_for_delete (ptrdiff_t, ptrdiff_t);
3966 extern void fix_start_end_in_overlays (ptrdiff_t, ptrdiff_t);
3967 extern void report_overlay_modification (Lisp_Object, Lisp_Object, bool,
3968 Lisp_Object, Lisp_Object, Lisp_Object);
3969 extern bool overlay_touches_p (ptrdiff_t);
3970 extern Lisp_Object other_buffer_safely (Lisp_Object);
3971 extern Lisp_Object get_truename_buffer (Lisp_Object);
3972 extern void init_buffer_once (void);
3973 extern void init_buffer (int);
3974 extern void syms_of_buffer (void);
3975 extern void keys_of_buffer (void);
3976
3977 /* Defined in marker.c. */
3978
3979 extern ptrdiff_t marker_position (Lisp_Object);
3980 extern ptrdiff_t marker_byte_position (Lisp_Object);
3981 extern void clear_charpos_cache (struct buffer *);
3982 extern ptrdiff_t buf_charpos_to_bytepos (struct buffer *, ptrdiff_t);
3983 extern ptrdiff_t buf_bytepos_to_charpos (struct buffer *, ptrdiff_t);
3984 extern void unchain_marker (struct Lisp_Marker *marker);
3985 extern Lisp_Object set_marker_restricted (Lisp_Object, Lisp_Object, Lisp_Object);
3986 extern Lisp_Object set_marker_both (Lisp_Object, Lisp_Object, ptrdiff_t, ptrdiff_t);
3987 extern Lisp_Object set_marker_restricted_both (Lisp_Object, Lisp_Object,
3988 ptrdiff_t, ptrdiff_t);
3989 extern Lisp_Object build_marker (struct buffer *, ptrdiff_t, ptrdiff_t);
3990 extern void syms_of_marker (void);
3991
3992 /* Defined in fileio.c. */
3993
3994 extern Lisp_Object expand_and_dir_to_file (Lisp_Object, Lisp_Object);
3995 extern Lisp_Object write_region (Lisp_Object, Lisp_Object, Lisp_Object,
3996 Lisp_Object, Lisp_Object, Lisp_Object,
3997 Lisp_Object, int);
3998 extern void close_file_unwind (int);
3999 extern void fclose_unwind (void *);
4000 extern void restore_point_unwind (Lisp_Object);
4001 extern _Noreturn void report_file_errno (const char *, Lisp_Object, int);
4002 extern _Noreturn void report_file_error (const char *, Lisp_Object);
4003 extern _Noreturn void report_file_notify_error (const char *, Lisp_Object);
4004 extern bool internal_delete_file (Lisp_Object);
4005 extern Lisp_Object emacs_readlinkat (int, const char *);
4006 extern bool file_directory_p (const char *);
4007 extern bool file_accessible_directory_p (Lisp_Object);
4008 extern void init_fileio (void);
4009 extern void syms_of_fileio (void);
4010 extern Lisp_Object make_temp_name (Lisp_Object, bool);
4011
4012 /* Defined in search.c. */
4013 extern void shrink_regexp_cache (void);
4014 extern void restore_search_regs (void);
4015 extern void record_unwind_save_match_data (void);
4016 struct re_registers;
4017 extern struct re_pattern_buffer *compile_pattern (Lisp_Object,
4018 struct re_registers *,
4019 Lisp_Object, bool, bool);
4020 extern ptrdiff_t fast_string_match_internal (Lisp_Object, Lisp_Object,
4021 Lisp_Object);
4022
4023 INLINE ptrdiff_t
4024 fast_string_match (Lisp_Object regexp, Lisp_Object string)
4025 {
4026 return fast_string_match_internal (regexp, string, Qnil);
4027 }
4028
4029 INLINE ptrdiff_t
4030 fast_string_match_ignore_case (Lisp_Object regexp, Lisp_Object string)
4031 {
4032 return fast_string_match_internal (regexp, string, Vascii_canon_table);
4033 }
4034
4035 extern ptrdiff_t fast_c_string_match_ignore_case (Lisp_Object, const char *,
4036 ptrdiff_t);
4037 extern ptrdiff_t fast_looking_at (Lisp_Object, ptrdiff_t, ptrdiff_t,
4038 ptrdiff_t, ptrdiff_t, Lisp_Object);
4039 extern ptrdiff_t find_newline (ptrdiff_t, ptrdiff_t, ptrdiff_t, ptrdiff_t,
4040 ptrdiff_t, ptrdiff_t *, ptrdiff_t *, bool);
4041 extern ptrdiff_t scan_newline (ptrdiff_t, ptrdiff_t, ptrdiff_t, ptrdiff_t,
4042 ptrdiff_t, bool);
4043 extern ptrdiff_t scan_newline_from_point (ptrdiff_t, ptrdiff_t *, ptrdiff_t *);
4044 extern ptrdiff_t find_newline_no_quit (ptrdiff_t, ptrdiff_t,
4045 ptrdiff_t, ptrdiff_t *);
4046 extern ptrdiff_t find_before_next_newline (ptrdiff_t, ptrdiff_t,
4047 ptrdiff_t, ptrdiff_t *);
4048 extern void syms_of_search (void);
4049 extern void clear_regexp_cache (void);
4050
4051 /* Defined in minibuf.c. */
4052
4053 extern Lisp_Object Vminibuffer_list;
4054 extern Lisp_Object last_minibuf_string;
4055 extern Lisp_Object get_minibuffer (EMACS_INT);
4056 extern void init_minibuf_once (void);
4057 extern void syms_of_minibuf (void);
4058
4059 /* Defined in callint.c. */
4060
4061 extern void syms_of_callint (void);
4062
4063 /* Defined in casefiddle.c. */
4064
4065 extern void syms_of_casefiddle (void);
4066 extern void keys_of_casefiddle (void);
4067
4068 /* Defined in casetab.c. */
4069
4070 extern void init_casetab_once (void);
4071 extern void syms_of_casetab (void);
4072
4073 /* Defined in keyboard.c. */
4074
4075 extern Lisp_Object echo_message_buffer;
4076 extern struct kboard *echo_kboard;
4077 extern void cancel_echoing (void);
4078 extern bool input_pending;
4079 #ifdef HAVE_STACK_OVERFLOW_HANDLING
4080 extern sigjmp_buf return_to_command_loop;
4081 #endif
4082 extern Lisp_Object menu_bar_items (Lisp_Object);
4083 extern Lisp_Object tool_bar_items (Lisp_Object, int *);
4084 extern void discard_mouse_events (void);
4085 #ifdef USABLE_SIGIO
4086 void handle_input_available_signal (int);
4087 #endif
4088 extern Lisp_Object pending_funcalls;
4089 extern bool detect_input_pending (void);
4090 extern bool detect_input_pending_ignore_squeezables (void);
4091 extern bool detect_input_pending_run_timers (bool);
4092 extern void safe_run_hooks (Lisp_Object);
4093 extern void cmd_error_internal (Lisp_Object, const char *);
4094 extern Lisp_Object command_loop_1 (void);
4095 extern Lisp_Object read_menu_command (void);
4096 extern Lisp_Object recursive_edit_1 (void);
4097 extern void record_auto_save (void);
4098 extern void force_auto_save_soon (void);
4099 extern void init_keyboard (void);
4100 extern void syms_of_keyboard (void);
4101 extern void keys_of_keyboard (void);
4102
4103 /* Defined in indent.c. */
4104 extern ptrdiff_t current_column (void);
4105 extern void invalidate_current_column (void);
4106 extern bool indented_beyond_p (ptrdiff_t, ptrdiff_t, EMACS_INT);
4107 extern void syms_of_indent (void);
4108
4109 /* Defined in frame.c. */
4110 extern void store_frame_param (struct frame *, Lisp_Object, Lisp_Object);
4111 extern void store_in_alist (Lisp_Object *, Lisp_Object, Lisp_Object);
4112 extern Lisp_Object do_switch_frame (Lisp_Object, int, int, Lisp_Object);
4113 extern Lisp_Object get_frame_param (struct frame *, Lisp_Object);
4114 extern void frames_discard_buffer (Lisp_Object);
4115 extern void syms_of_frame (void);
4116
4117 /* Defined in emacs.c. */
4118 extern char **initial_argv;
4119 extern int initial_argc;
4120 #if defined (HAVE_X_WINDOWS) || defined (HAVE_NS)
4121 extern bool display_arg;
4122 #endif
4123 extern Lisp_Object decode_env_path (const char *, const char *, bool);
4124 extern Lisp_Object empty_unibyte_string, empty_multibyte_string;
4125 extern _Noreturn void terminate_due_to_signal (int, int);
4126 #ifdef WINDOWSNT
4127 extern Lisp_Object Vlibrary_cache;
4128 #endif
4129 #if HAVE_SETLOCALE
4130 void fixup_locale (void);
4131 void synchronize_system_messages_locale (void);
4132 void synchronize_system_time_locale (void);
4133 #else
4134 INLINE void fixup_locale (void) {}
4135 INLINE void synchronize_system_messages_locale (void) {}
4136 INLINE void synchronize_system_time_locale (void) {}
4137 #endif
4138 extern void shut_down_emacs (int, Lisp_Object);
4139
4140 /* True means don't do interactive redisplay and don't change tty modes. */
4141 extern bool noninteractive;
4142
4143 /* True means remove site-lisp directories from load-path. */
4144 extern bool no_site_lisp;
4145
4146 /* Pipe used to send exit notification to the daemon parent at
4147 startup. On Windows, we use a kernel event instead. */
4148 #ifndef WINDOWSNT
4149 extern int daemon_pipe[2];
4150 #define IS_DAEMON (daemon_pipe[1] != 0)
4151 #define DAEMON_RUNNING (daemon_pipe[1] >= 0)
4152 #else /* WINDOWSNT */
4153 extern void *w32_daemon_event;
4154 #define IS_DAEMON (w32_daemon_event != NULL)
4155 #define DAEMON_RUNNING (w32_daemon_event != INVALID_HANDLE_VALUE)
4156 #endif
4157
4158 /* True if handling a fatal error already. */
4159 extern bool fatal_error_in_progress;
4160
4161 /* True means don't do use window-system-specific display code. */
4162 extern bool inhibit_window_system;
4163 /* True means that a filter or a sentinel is running. */
4164 extern bool running_asynch_code;
4165
4166 /* Defined in process.c. */
4167 extern void kill_buffer_processes (Lisp_Object);
4168 extern int wait_reading_process_output (intmax_t, int, int, bool, Lisp_Object,
4169 struct Lisp_Process *, int);
4170 /* Max value for the first argument of wait_reading_process_output. */
4171 #if __GNUC__ == 3 || (__GNUC__ == 4 && __GNUC_MINOR__ <= 5)
4172 /* Work around a bug in GCC 3.4.2, known to be fixed in GCC 4.6.3.
4173 The bug merely causes a bogus warning, but the warning is annoying. */
4174 # define WAIT_READING_MAX min (TYPE_MAXIMUM (time_t), INTMAX_MAX)
4175 #else
4176 # define WAIT_READING_MAX INTMAX_MAX
4177 #endif
4178 #ifdef HAVE_TIMERFD
4179 extern void add_timer_wait_descriptor (int);
4180 #endif
4181 extern void add_keyboard_wait_descriptor (int);
4182 extern void delete_keyboard_wait_descriptor (int);
4183 #ifdef HAVE_GPM
4184 extern void add_gpm_wait_descriptor (int);
4185 extern void delete_gpm_wait_descriptor (int);
4186 #endif
4187 extern void init_process_emacs (void);
4188 extern void syms_of_process (void);
4189 extern void setup_process_coding_systems (Lisp_Object);
4190
4191 /* Defined in callproc.c. */
4192 #ifndef DOS_NT
4193 _Noreturn
4194 #endif
4195 extern int child_setup (int, int, int, char **, bool, Lisp_Object);
4196 extern void init_callproc_1 (void);
4197 extern void init_callproc (void);
4198 extern void set_initial_environment (void);
4199 extern void syms_of_callproc (void);
4200
4201 /* Defined in doc.c. */
4202 enum text_quoting_style
4203 {
4204 /* Use curved single quotes ‘like this’. */
4205 CURVE_QUOTING_STYLE,
4206
4207 /* Use grave accent and apostrophe `like this'. */
4208 GRAVE_QUOTING_STYLE,
4209
4210 /* Use apostrophes 'like this'. */
4211 STRAIGHT_QUOTING_STYLE
4212 };
4213 extern enum text_quoting_style text_quoting_style (void);
4214 extern Lisp_Object read_doc_string (Lisp_Object);
4215 extern Lisp_Object get_doc_string (Lisp_Object, bool, bool);
4216 extern void syms_of_doc (void);
4217 extern int read_bytecode_char (bool);
4218
4219 /* Defined in bytecode.c. */
4220 extern void syms_of_bytecode (void);
4221 extern struct byte_stack *byte_stack_list;
4222 extern void relocate_byte_stack (void);
4223 extern Lisp_Object exec_byte_code (Lisp_Object, Lisp_Object, Lisp_Object,
4224 Lisp_Object, ptrdiff_t, Lisp_Object *);
4225
4226 /* Defined in macros.c. */
4227 extern void init_macros (void);
4228 extern void syms_of_macros (void);
4229
4230 /* Defined in undo.c. */
4231 extern void truncate_undo_list (struct buffer *);
4232 extern void record_insert (ptrdiff_t, ptrdiff_t);
4233 extern void record_delete (ptrdiff_t, Lisp_Object, bool);
4234 extern void record_first_change (void);
4235 extern void record_change (ptrdiff_t, ptrdiff_t);
4236 extern void record_property_change (ptrdiff_t, ptrdiff_t,
4237 Lisp_Object, Lisp_Object,
4238 Lisp_Object);
4239 extern void syms_of_undo (void);
4240
4241 /* Defined in textprop.c. */
4242 extern void report_interval_modification (Lisp_Object, Lisp_Object);
4243
4244 /* Defined in menu.c. */
4245 extern void syms_of_menu (void);
4246
4247 /* Defined in xmenu.c. */
4248 extern void syms_of_xmenu (void);
4249
4250 /* Defined in termchar.h. */
4251 struct tty_display_info;
4252
4253 /* Defined in termhooks.h. */
4254 struct terminal;
4255
4256 /* Defined in sysdep.c. */
4257 #ifndef HAVE_GET_CURRENT_DIR_NAME
4258 extern char *get_current_dir_name (void);
4259 #endif
4260 extern void stuff_char (char c);
4261 extern void init_foreground_group (void);
4262 extern void sys_subshell (void);
4263 extern void sys_suspend (void);
4264 extern void discard_tty_input (void);
4265 extern void init_sys_modes (struct tty_display_info *);
4266 extern void reset_sys_modes (struct tty_display_info *);
4267 extern void init_all_sys_modes (void);
4268 extern void reset_all_sys_modes (void);
4269 extern void child_setup_tty (int);
4270 extern void setup_pty (int);
4271 extern int set_window_size (int, int, int);
4272 extern EMACS_INT get_random (void);
4273 extern void seed_random (void *, ptrdiff_t);
4274 extern void init_random (void);
4275 extern void emacs_backtrace (int);
4276 extern _Noreturn void emacs_abort (void) NO_INLINE;
4277 extern int emacs_open (const char *, int, int);
4278 extern int emacs_pipe (int[2]);
4279 extern int emacs_close (int);
4280 extern ptrdiff_t emacs_read (int, void *, ptrdiff_t);
4281 extern ptrdiff_t emacs_write (int, void const *, ptrdiff_t);
4282 extern ptrdiff_t emacs_write_sig (int, void const *, ptrdiff_t);
4283 extern void emacs_perror (char const *);
4284
4285 extern void unlock_all_files (void);
4286 extern void lock_file (Lisp_Object);
4287 extern void unlock_file (Lisp_Object);
4288 extern void unlock_buffer (struct buffer *);
4289 extern void syms_of_filelock (void);
4290 extern int str_collate (Lisp_Object, Lisp_Object, Lisp_Object, Lisp_Object);
4291
4292 /* Defined in sound.c. */
4293 extern void syms_of_sound (void);
4294
4295 /* Defined in category.c. */
4296 extern void init_category_once (void);
4297 extern Lisp_Object char_category_set (int);
4298 extern void syms_of_category (void);
4299
4300 /* Defined in ccl.c. */
4301 extern void syms_of_ccl (void);
4302
4303 /* Defined in dired.c. */
4304 extern void syms_of_dired (void);
4305 extern Lisp_Object directory_files_internal (Lisp_Object, Lisp_Object,
4306 Lisp_Object, Lisp_Object,
4307 bool, Lisp_Object);
4308
4309 /* Defined in term.c. */
4310 extern int *char_ins_del_vector;
4311 extern void syms_of_term (void);
4312 extern _Noreturn void fatal (const char *msgid, ...)
4313 ATTRIBUTE_FORMAT_PRINTF (1, 2);
4314
4315 /* Defined in terminal.c. */
4316 extern void syms_of_terminal (void);
4317
4318 /* Defined in font.c. */
4319 extern void syms_of_font (void);
4320 extern void init_font (void);
4321
4322 #ifdef HAVE_WINDOW_SYSTEM
4323 /* Defined in fontset.c. */
4324 extern void syms_of_fontset (void);
4325 #endif
4326
4327 /* Defined in gfilenotify.c */
4328 #ifdef HAVE_GFILENOTIFY
4329 extern void globals_of_gfilenotify (void);
4330 extern void syms_of_gfilenotify (void);
4331 #endif
4332
4333 /* Defined in inotify.c */
4334 #ifdef HAVE_INOTIFY
4335 extern void syms_of_inotify (void);
4336 #endif
4337
4338 #ifdef HAVE_W32NOTIFY
4339 /* Defined on w32notify.c. */
4340 extern void syms_of_w32notify (void);
4341 #endif
4342
4343 /* Defined in xfaces.c. */
4344 extern Lisp_Object Vface_alternative_font_family_alist;
4345 extern Lisp_Object Vface_alternative_font_registry_alist;
4346 extern void syms_of_xfaces (void);
4347
4348 #ifdef HAVE_X_WINDOWS
4349 /* Defined in xfns.c. */
4350 extern void syms_of_xfns (void);
4351
4352 /* Defined in xsmfns.c. */
4353 extern void syms_of_xsmfns (void);
4354
4355 /* Defined in xselect.c. */
4356 extern void syms_of_xselect (void);
4357
4358 /* Defined in xterm.c. */
4359 extern void init_xterm (void);
4360 extern void syms_of_xterm (void);
4361 #endif /* HAVE_X_WINDOWS */
4362
4363 #ifdef HAVE_WINDOW_SYSTEM
4364 /* Defined in xterm.c, nsterm.m, w32term.c. */
4365 extern char *x_get_keysym_name (int);
4366 #endif /* HAVE_WINDOW_SYSTEM */
4367
4368 #ifdef HAVE_LIBXML2
4369 /* Defined in xml.c. */
4370 extern void syms_of_xml (void);
4371 extern void xml_cleanup_parser (void);
4372 #endif
4373
4374 #ifdef HAVE_ZLIB
4375 /* Defined in decompress.c. */
4376 extern void syms_of_decompress (void);
4377 #endif
4378
4379 #ifdef HAVE_DBUS
4380 /* Defined in dbusbind.c. */
4381 void init_dbusbind (void);
4382 void syms_of_dbusbind (void);
4383 #endif
4384
4385
4386 /* Defined in profiler.c. */
4387 extern bool profiler_memory_running;
4388 extern void malloc_probe (size_t);
4389 extern void syms_of_profiler (void);
4390
4391
4392 #ifdef DOS_NT
4393 /* Defined in msdos.c, w32.c. */
4394 extern char *emacs_root_dir (void);
4395 #endif /* DOS_NT */
4396
4397 /* Defined in lastfile.c. */
4398 extern char my_edata[];
4399 extern char my_endbss[];
4400 extern char *my_endbss_static;
4401
4402 /* True means ^G can quit instantly. */
4403 extern bool immediate_quit;
4404
4405 extern void *xmalloc (size_t) ATTRIBUTE_MALLOC_SIZE ((1));
4406 extern void *xzalloc (size_t) ATTRIBUTE_MALLOC_SIZE ((1));
4407 extern void *xrealloc (void *, size_t) ATTRIBUTE_ALLOC_SIZE ((2));
4408 extern void xfree (void *);
4409 extern void *xnmalloc (ptrdiff_t, ptrdiff_t) ATTRIBUTE_MALLOC_SIZE ((1,2));
4410 extern void *xnrealloc (void *, ptrdiff_t, ptrdiff_t)
4411 ATTRIBUTE_ALLOC_SIZE ((2,3));
4412 extern void *xpalloc (void *, ptrdiff_t *, ptrdiff_t, ptrdiff_t, ptrdiff_t);
4413
4414 extern char *xstrdup (const char *) ATTRIBUTE_MALLOC;
4415 extern char *xlispstrdup (Lisp_Object) ATTRIBUTE_MALLOC;
4416 extern void dupstring (char **, char const *);
4417
4418 /* Make DEST a copy of STRING's data. Return a pointer to DEST's terminating
4419 null byte. This is like stpcpy, except the source is a Lisp string. */
4420
4421 INLINE char *
4422 lispstpcpy (char *dest, Lisp_Object string)
4423 {
4424 ptrdiff_t len = SBYTES (string);
4425 memcpy (dest, SDATA (string), len + 1);
4426 return dest + len;
4427 }
4428
4429 extern void xputenv (const char *);
4430
4431 extern char *egetenv_internal (const char *, ptrdiff_t);
4432
4433 INLINE char *
4434 egetenv (const char *var)
4435 {
4436 /* When VAR is a string literal, strlen can be optimized away. */
4437 return egetenv_internal (var, strlen (var));
4438 }
4439
4440 /* Set up the name of the machine we're running on. */
4441 extern void init_system_name (void);
4442
4443 /* Return the absolute value of X. X should be a signed integer
4444 expression without side effects, and X's absolute value should not
4445 exceed the maximum for its promoted type. This is called 'eabs'
4446 because 'abs' is reserved by the C standard. */
4447 #define eabs(x) ((x) < 0 ? -(x) : (x))
4448
4449 /* Return a fixnum or float, depending on whether VAL fits in a Lisp
4450 fixnum. */
4451
4452 #define make_fixnum_or_float(val) \
4453 (FIXNUM_OVERFLOW_P (val) ? make_float (val) : make_number (val))
4454
4455 /* SAFE_ALLOCA normally allocates memory on the stack, but if size is
4456 larger than MAX_ALLOCA, use xmalloc to avoid overflowing the stack. */
4457
4458 enum MAX_ALLOCA { MAX_ALLOCA = 16 * 1024 };
4459
4460 extern void *record_xmalloc (size_t) ATTRIBUTE_ALLOC_SIZE ((1));
4461
4462 #define USE_SAFE_ALLOCA \
4463 ptrdiff_t sa_avail = MAX_ALLOCA; \
4464 ptrdiff_t sa_count = SPECPDL_INDEX (); bool sa_must_free = false
4465
4466 #define AVAIL_ALLOCA(size) (sa_avail -= (size), alloca (size))
4467
4468 /* SAFE_ALLOCA allocates a simple buffer. */
4469
4470 #define SAFE_ALLOCA(size) ((size) <= sa_avail \
4471 ? AVAIL_ALLOCA (size) \
4472 : (sa_must_free = true, record_xmalloc (size)))
4473
4474 /* SAFE_NALLOCA sets BUF to a newly allocated array of MULTIPLIER *
4475 NITEMS items, each of the same type as *BUF. MULTIPLIER must
4476 positive. The code is tuned for MULTIPLIER being a constant. */
4477
4478 #define SAFE_NALLOCA(buf, multiplier, nitems) \
4479 do { \
4480 if ((nitems) <= sa_avail / sizeof *(buf) / (multiplier)) \
4481 (buf) = AVAIL_ALLOCA (sizeof *(buf) * (multiplier) * (nitems)); \
4482 else \
4483 { \
4484 (buf) = xnmalloc (nitems, sizeof *(buf) * (multiplier)); \
4485 sa_must_free = true; \
4486 record_unwind_protect_ptr (xfree, buf); \
4487 } \
4488 } while (false)
4489
4490 /* SAFE_ALLOCA_STRING allocates a C copy of a Lisp string. */
4491
4492 #define SAFE_ALLOCA_STRING(ptr, string) \
4493 do { \
4494 (ptr) = SAFE_ALLOCA (SBYTES (string) + 1); \
4495 memcpy (ptr, SDATA (string), SBYTES (string) + 1); \
4496 } while (false)
4497
4498 /* SAFE_FREE frees xmalloced memory and enables GC as needed. */
4499
4500 #define SAFE_FREE() \
4501 do { \
4502 if (sa_must_free) { \
4503 sa_must_free = false; \
4504 unbind_to (sa_count, Qnil); \
4505 } \
4506 } while (false)
4507
4508 /* SAFE_ALLOCA_LISP allocates an array of Lisp_Objects. */
4509
4510 #define SAFE_ALLOCA_LISP(buf, nelt) \
4511 do { \
4512 ptrdiff_t alloca_nbytes; \
4513 if (INT_MULTIPLY_WRAPV (nelt, word_size, &alloca_nbytes) \
4514 || SIZE_MAX < alloca_nbytes) \
4515 memory_full (SIZE_MAX); \
4516 else if (alloca_nbytes <= sa_avail) \
4517 (buf) = AVAIL_ALLOCA (alloca_nbytes); \
4518 else \
4519 { \
4520 Lisp_Object arg_; \
4521 (buf) = xmalloc (alloca_nbytes); \
4522 arg_ = make_save_memory (buf, nelt); \
4523 sa_must_free = true; \
4524 record_unwind_protect (free_save_value, arg_); \
4525 } \
4526 } while (false)
4527
4528
4529 /* If USE_STACK_LISP_OBJECTS, define macros that and functions that allocate
4530 block-scoped conses and strings. These objects are not
4531 managed by the garbage collector, so they are dangerous: passing them
4532 out of their scope (e.g., to user code) results in undefined behavior.
4533 Conversely, they have better performance because GC is not involved.
4534
4535 This feature is experimental and requires careful debugging.
4536 Build with CPPFLAGS='-DUSE_STACK_LISP_OBJECTS=0' to disable it. */
4537
4538 #ifndef USE_STACK_LISP_OBJECTS
4539 # define USE_STACK_LISP_OBJECTS true
4540 #endif
4541
4542 #ifdef GC_CHECK_STRING_BYTES
4543 enum { defined_GC_CHECK_STRING_BYTES = true };
4544 #else
4545 enum { defined_GC_CHECK_STRING_BYTES = false };
4546 #endif
4547
4548 /* Struct inside unions that are typically no larger and aligned enough. */
4549
4550 union Aligned_Cons
4551 {
4552 struct Lisp_Cons s;
4553 double d; intmax_t i; void *p;
4554 };
4555
4556 union Aligned_String
4557 {
4558 struct Lisp_String s;
4559 double d; intmax_t i; void *p;
4560 };
4561
4562 /* True for stack-based cons and string implementations, respectively.
4563 Use stack-based strings only if stack-based cons also works.
4564 Otherwise, STACK_CONS would create heap-based cons cells that
4565 could point to stack-based strings, which is a no-no. */
4566
4567 enum
4568 {
4569 USE_STACK_CONS = (USE_STACK_LISP_OBJECTS
4570 && alignof (union Aligned_Cons) % GCALIGNMENT == 0),
4571 USE_STACK_STRING = (USE_STACK_CONS
4572 && !defined_GC_CHECK_STRING_BYTES
4573 && alignof (union Aligned_String) % GCALIGNMENT == 0)
4574 };
4575
4576 /* Auxiliary macros used for auto allocation of Lisp objects. Please
4577 use these only in macros like AUTO_CONS that declare a local
4578 variable whose lifetime will be clear to the programmer. */
4579 #define STACK_CONS(a, b) \
4580 make_lisp_ptr (&(union Aligned_Cons) { { a, { b } } }.s, Lisp_Cons)
4581 #define AUTO_CONS_EXPR(a, b) \
4582 (USE_STACK_CONS ? STACK_CONS (a, b) : Fcons (a, b))
4583
4584 /* Declare NAME as an auto Lisp cons or short list if possible, a
4585 GC-based one otherwise. This is in the sense of the C keyword
4586 'auto'; i.e., the object has the lifetime of the containing block.
4587 The resulting object should not be made visible to user Lisp code. */
4588
4589 #define AUTO_CONS(name, a, b) Lisp_Object name = AUTO_CONS_EXPR (a, b)
4590 #define AUTO_LIST1(name, a) \
4591 Lisp_Object name = (USE_STACK_CONS ? STACK_CONS (a, Qnil) : list1 (a))
4592 #define AUTO_LIST2(name, a, b) \
4593 Lisp_Object name = (USE_STACK_CONS \
4594 ? STACK_CONS (a, STACK_CONS (b, Qnil)) \
4595 : list2 (a, b))
4596 #define AUTO_LIST3(name, a, b, c) \
4597 Lisp_Object name = (USE_STACK_CONS \
4598 ? STACK_CONS (a, STACK_CONS (b, STACK_CONS (c, Qnil))) \
4599 : list3 (a, b, c))
4600 #define AUTO_LIST4(name, a, b, c, d) \
4601 Lisp_Object name \
4602 = (USE_STACK_CONS \
4603 ? STACK_CONS (a, STACK_CONS (b, STACK_CONS (c, \
4604 STACK_CONS (d, Qnil)))) \
4605 : list4 (a, b, c, d))
4606
4607 /* Check whether stack-allocated strings are ASCII-only. */
4608
4609 #if defined (ENABLE_CHECKING) && USE_STACK_LISP_OBJECTS
4610 extern const char *verify_ascii (const char *);
4611 #else
4612 # define verify_ascii(str) (str)
4613 #endif
4614
4615 /* Declare NAME as an auto Lisp string if possible, a GC-based one if not.
4616 Take its value from STR. STR is not necessarily copied and should
4617 contain only ASCII characters. The resulting Lisp string should
4618 not be modified or made visible to user code. */
4619
4620 #define AUTO_STRING(name, str) \
4621 Lisp_Object name = \
4622 (USE_STACK_STRING \
4623 ? (make_lisp_ptr \
4624 ((&(union Aligned_String) \
4625 {{strlen (str), -1, 0, (unsigned char *) verify_ascii (str)}}.s), \
4626 Lisp_String)) \
4627 : build_string (verify_ascii (str)))
4628
4629 /* Loop over all tails of a list, checking for cycles.
4630 FIXME: Make tortoise and n internal declarations.
4631 FIXME: Unroll the loop body so we don't need `n'. */
4632 #define FOR_EACH_TAIL(hare, list, tortoise, n) \
4633 for ((tortoise) = (hare) = (list), (n) = true; \
4634 CONSP (hare); \
4635 (hare = XCDR (hare), (n) = !(n), \
4636 ((n) \
4637 ? (EQ (hare, tortoise) \
4638 ? xsignal1 (Qcircular_list, list) \
4639 : (void) 0) \
4640 /* Move tortoise before the next iteration, in case */ \
4641 /* the next iteration does an Fsetcdr. */ \
4642 : (void) ((tortoise) = XCDR (tortoise)))))
4643
4644 /* Do a `for' loop over alist values. */
4645
4646 #define FOR_EACH_ALIST_VALUE(head_var, list_var, value_var) \
4647 for ((list_var) = (head_var); \
4648 (CONSP (list_var) && ((value_var) = XCDR (XCAR (list_var)), true)); \
4649 (list_var) = XCDR (list_var))
4650
4651 /* Check whether it's time for GC, and run it if so. */
4652
4653 INLINE void
4654 maybe_gc (void)
4655 {
4656 if ((consing_since_gc > gc_cons_threshold
4657 && consing_since_gc > gc_relative_threshold)
4658 || (!NILP (Vmemory_full)
4659 && consing_since_gc > memory_full_cons_threshold))
4660 Fgarbage_collect ();
4661 }
4662
4663 INLINE bool
4664 functionp (Lisp_Object object)
4665 {
4666 if (SYMBOLP (object) && !NILP (Ffboundp (object)))
4667 {
4668 object = Findirect_function (object, Qt);
4669
4670 if (CONSP (object) && EQ (XCAR (object), Qautoload))
4671 {
4672 /* Autoloaded symbols are functions, except if they load
4673 macros or keymaps. */
4674 int i;
4675 for (i = 0; i < 4 && CONSP (object); i++)
4676 object = XCDR (object);
4677
4678 return ! (CONSP (object) && !NILP (XCAR (object)));
4679 }
4680 }
4681
4682 if (SUBRP (object))
4683 return XSUBR (object)->max_args != UNEVALLED;
4684 else if (COMPILEDP (object))
4685 return true;
4686 else if (CONSP (object))
4687 {
4688 Lisp_Object car = XCAR (object);
4689 return EQ (car, Qlambda) || EQ (car, Qclosure);
4690 }
4691 else
4692 return false;
4693 }
4694
4695 INLINE_HEADER_END
4696
4697 #endif /* EMACS_LISP_H */