1 /* Random utility Lisp functions.
3 Copyright (C) 1985-1987, 1993-1995, 1997-2013 Free Software Foundation, Inc.
5 This file is part of GNU Emacs.
7 GNU Emacs is free software: you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation, either version 3 of the License, or
10 (at your option) any later version.
12 GNU Emacs is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
17 You should have received a copy of the GNU General Public License
18 along with GNU Emacs. If not, see <http://www.gnu.org/licenses/>. */
29 #include "character.h"
34 #include "intervals.h"
37 #include "blockinput.h"
38 #if defined (HAVE_X_WINDOWS)
42 Lisp_Object Qstring_lessp
;
43 static Lisp_Object Qprovide
, Qrequire
;
44 static Lisp_Object Qyes_or_no_p_history
;
45 Lisp_Object Qcursor_in_echo_area
;
46 static Lisp_Object Qwidget_type
;
47 static Lisp_Object Qcodeset
, Qdays
, Qmonths
, Qpaper
;
49 static Lisp_Object Qmd5
, Qsha1
, Qsha224
, Qsha256
, Qsha384
, Qsha512
;
51 static bool internal_equal (Lisp_Object
, Lisp_Object
, int, bool, Lisp_Object
);
53 DEFUN ("identity", Fidentity
, Sidentity
, 1, 1, 0,
54 doc
: /* Return the argument unchanged. */)
60 DEFUN ("random", Frandom
, Srandom
, 0, 1, 0,
61 doc
: /* Return a pseudo-random number.
62 All integers representable in Lisp, i.e. between `most-negative-fixnum'
63 and `most-positive-fixnum', inclusive, are equally likely.
65 With positive integer LIMIT, return random number in interval [0,LIMIT).
66 With argument t, set the random number seed from the current time and pid.
67 With a string argument, set the seed based on the string's contents.
68 Other values of LIMIT are ignored.
70 See Info node `(elisp)Random Numbers' for more details. */)
77 else if (STRINGP (limit
))
78 seed_random (SSDATA (limit
), SBYTES (limit
));
81 if (NATNUMP (limit
) && XFASTINT (limit
) != 0)
82 val
%= XFASTINT (limit
);
83 return make_number (val
);
86 /* Heuristic on how many iterations of a tight loop can be safely done
87 before it's time to do a QUIT. This must be a power of 2. */
88 enum { QUIT_COUNT_HEURISTIC
= 1 << 16 };
90 /* Random data-structure functions. */
93 CHECK_LIST_END (Lisp_Object x
, Lisp_Object y
)
95 CHECK_TYPE (NILP (x
), Qlistp
, y
);
98 DEFUN ("length", Flength
, Slength
, 1, 1, 0,
99 doc
: /* Return the length of vector, list or string SEQUENCE.
100 A byte-code function object is also allowed.
101 If the string contains multibyte characters, this is not necessarily
102 the number of bytes in the string; it is the number of characters.
103 To get the number of bytes, use `string-bytes'. */)
104 (register Lisp_Object sequence
)
106 register Lisp_Object val
;
108 if (STRINGP (sequence
))
109 XSETFASTINT (val
, SCHARS (sequence
));
110 else if (VECTORP (sequence
))
111 XSETFASTINT (val
, ASIZE (sequence
));
112 else if (CHAR_TABLE_P (sequence
))
113 XSETFASTINT (val
, MAX_CHAR
);
114 else if (BOOL_VECTOR_P (sequence
))
115 XSETFASTINT (val
, bool_vector_size (sequence
));
116 else if (COMPILEDP (sequence
))
117 XSETFASTINT (val
, ASIZE (sequence
) & PSEUDOVECTOR_SIZE_MASK
);
118 else if (CONSP (sequence
))
125 if ((i
& (QUIT_COUNT_HEURISTIC
- 1)) == 0)
127 if (MOST_POSITIVE_FIXNUM
< i
)
128 error ("List too long");
131 sequence
= XCDR (sequence
);
133 while (CONSP (sequence
));
135 CHECK_LIST_END (sequence
, sequence
);
137 val
= make_number (i
);
139 else if (NILP (sequence
))
140 XSETFASTINT (val
, 0);
142 wrong_type_argument (Qsequencep
, sequence
);
147 DEFUN ("safe-length", Fsafe_length
, Ssafe_length
, 1, 1, 0,
148 doc
: /* Return the length of a list, but avoid error or infinite loop.
149 This function never gets an error. If LIST is not really a list,
150 it returns 0. If LIST is circular, it returns a finite value
151 which is at least the number of distinct elements. */)
154 Lisp_Object tail
, halftail
;
159 return make_number (0);
161 /* halftail is used to detect circular lists. */
162 for (tail
= halftail
= list
; ; )
167 if (EQ (tail
, halftail
))
170 if ((lolen
& 1) == 0)
172 halftail
= XCDR (halftail
);
173 if ((lolen
& (QUIT_COUNT_HEURISTIC
- 1)) == 0)
177 hilen
+= UINTMAX_MAX
+ 1.0;
182 /* If the length does not fit into a fixnum, return a float.
183 On all known practical machines this returns an upper bound on
185 return hilen
? make_float (hilen
+ lolen
) : make_fixnum_or_float (lolen
);
188 DEFUN ("string-bytes", Fstring_bytes
, Sstring_bytes
, 1, 1, 0,
189 doc
: /* Return the number of bytes in STRING.
190 If STRING is multibyte, this may be greater than the length of STRING. */)
193 CHECK_STRING (string
);
194 return make_number (SBYTES (string
));
197 DEFUN ("string-equal", Fstring_equal
, Sstring_equal
, 2, 2, 0,
198 doc
: /* Return t if two strings have identical contents.
199 Case is significant, but text properties are ignored.
200 Symbols are also allowed; their print names are used instead. */)
201 (register Lisp_Object s1
, Lisp_Object s2
)
204 s1
= SYMBOL_NAME (s1
);
206 s2
= SYMBOL_NAME (s2
);
210 if (SCHARS (s1
) != SCHARS (s2
)
211 || SBYTES (s1
) != SBYTES (s2
)
212 || memcmp (SDATA (s1
), SDATA (s2
), SBYTES (s1
)))
217 DEFUN ("compare-strings", Fcompare_strings
, Scompare_strings
, 6, 7, 0,
218 doc
: /* Compare the contents of two strings, converting to multibyte if needed.
219 The arguments START1, END1, START2, and END2, if non-nil, are
220 positions specifying which parts of STR1 or STR2 to compare. In
221 string STR1, compare the part between START1 (inclusive) and END1
222 \(exclusive). If START1 is nil, it defaults to 0, the beginning of
223 the string; if END1 is nil, it defaults to the length of the string.
224 Likewise, in string STR2, compare the part between START2 and END2.
226 The strings are compared by the numeric values of their characters.
227 For instance, STR1 is "less than" STR2 if its first differing
228 character has a smaller numeric value. If IGNORE-CASE is non-nil,
229 characters are converted to lower-case before comparing them. Unibyte
230 strings are converted to multibyte for comparison.
232 The value is t if the strings (or specified portions) match.
233 If string STR1 is less, the value is a negative number N;
234 - 1 - N is the number of characters that match at the beginning.
235 If string STR1 is greater, the value is a positive number N;
236 N - 1 is the number of characters that match at the beginning. */)
237 (Lisp_Object str1
, Lisp_Object start1
, Lisp_Object end1
, Lisp_Object str2
, Lisp_Object start2
, Lisp_Object end2
, Lisp_Object ignore_case
)
239 register ptrdiff_t end1_char
, end2_char
;
240 register ptrdiff_t i1
, i1_byte
, i2
, i2_byte
;
245 start1
= make_number (0);
247 start2
= make_number (0);
248 CHECK_NATNUM (start1
);
249 CHECK_NATNUM (start2
);
255 end1_char
= SCHARS (str1
);
256 if (! NILP (end1
) && end1_char
> XINT (end1
))
257 end1_char
= XINT (end1
);
258 if (end1_char
< XINT (start1
))
259 args_out_of_range (str1
, start1
);
261 end2_char
= SCHARS (str2
);
262 if (! NILP (end2
) && end2_char
> XINT (end2
))
263 end2_char
= XINT (end2
);
264 if (end2_char
< XINT (start2
))
265 args_out_of_range (str2
, start2
);
270 i1_byte
= string_char_to_byte (str1
, i1
);
271 i2_byte
= string_char_to_byte (str2
, i2
);
273 while (i1
< end1_char
&& i2
< end2_char
)
275 /* When we find a mismatch, we must compare the
276 characters, not just the bytes. */
279 if (STRING_MULTIBYTE (str1
))
280 FETCH_STRING_CHAR_ADVANCE_NO_CHECK (c1
, str1
, i1
, i1_byte
);
283 c1
= SREF (str1
, i1
++);
284 MAKE_CHAR_MULTIBYTE (c1
);
287 if (STRING_MULTIBYTE (str2
))
288 FETCH_STRING_CHAR_ADVANCE_NO_CHECK (c2
, str2
, i2
, i2_byte
);
291 c2
= SREF (str2
, i2
++);
292 MAKE_CHAR_MULTIBYTE (c2
);
298 if (! NILP (ignore_case
))
302 tem
= Fupcase (make_number (c1
));
304 tem
= Fupcase (make_number (c2
));
311 /* Note that I1 has already been incremented
312 past the character that we are comparing;
313 hence we don't add or subtract 1 here. */
315 return make_number (- i1
+ XINT (start1
));
317 return make_number (i1
- XINT (start1
));
321 return make_number (i1
- XINT (start1
) + 1);
323 return make_number (- i1
+ XINT (start1
) - 1);
328 DEFUN ("string-lessp", Fstring_lessp
, Sstring_lessp
, 2, 2, 0,
329 doc
: /* Return t if first arg string is less than second in lexicographic order.
331 Symbols are also allowed; their print names are used instead. */)
332 (register Lisp_Object s1
, Lisp_Object s2
)
334 register ptrdiff_t end
;
335 register ptrdiff_t i1
, i1_byte
, i2
, i2_byte
;
338 s1
= SYMBOL_NAME (s1
);
340 s2
= SYMBOL_NAME (s2
);
344 i1
= i1_byte
= i2
= i2_byte
= 0;
347 if (end
> SCHARS (s2
))
352 /* When we find a mismatch, we must compare the
353 characters, not just the bytes. */
356 FETCH_STRING_CHAR_ADVANCE (c1
, s1
, i1
, i1_byte
);
357 FETCH_STRING_CHAR_ADVANCE (c2
, s2
, i2
, i2_byte
);
360 return c1
< c2
? Qt
: Qnil
;
362 return i1
< SCHARS (s2
) ? Qt
: Qnil
;
365 static Lisp_Object
concat (ptrdiff_t nargs
, Lisp_Object
*args
,
366 enum Lisp_Type target_type
, bool last_special
);
370 concat2 (Lisp_Object s1
, Lisp_Object s2
)
375 return concat (2, args
, Lisp_String
, 0);
380 concat3 (Lisp_Object s1
, Lisp_Object s2
, Lisp_Object s3
)
386 return concat (3, args
, Lisp_String
, 0);
389 DEFUN ("append", Fappend
, Sappend
, 0, MANY
, 0,
390 doc
: /* Concatenate all the arguments and make the result a list.
391 The result is a list whose elements are the elements of all the arguments.
392 Each argument may be a list, vector or string.
393 The last argument is not copied, just used as the tail of the new list.
394 usage: (append &rest SEQUENCES) */)
395 (ptrdiff_t nargs
, Lisp_Object
*args
)
397 return concat (nargs
, args
, Lisp_Cons
, 1);
400 DEFUN ("concat", Fconcat
, Sconcat
, 0, MANY
, 0,
401 doc
: /* Concatenate all the arguments and make the result a string.
402 The result is a string whose elements are the elements of all the arguments.
403 Each argument may be a string or a list or vector of characters (integers).
404 usage: (concat &rest SEQUENCES) */)
405 (ptrdiff_t nargs
, Lisp_Object
*args
)
407 return concat (nargs
, args
, Lisp_String
, 0);
410 DEFUN ("vconcat", Fvconcat
, Svconcat
, 0, MANY
, 0,
411 doc
: /* Concatenate all the arguments and make the result a vector.
412 The result is a vector whose elements are the elements of all the arguments.
413 Each argument may be a list, vector or string.
414 usage: (vconcat &rest SEQUENCES) */)
415 (ptrdiff_t nargs
, Lisp_Object
*args
)
417 return concat (nargs
, args
, Lisp_Vectorlike
, 0);
421 DEFUN ("copy-sequence", Fcopy_sequence
, Scopy_sequence
, 1, 1, 0,
422 doc
: /* Return a copy of a list, vector, string or char-table.
423 The elements of a list or vector are not copied; they are shared
424 with the original. */)
427 if (NILP (arg
)) return arg
;
429 if (CHAR_TABLE_P (arg
))
431 return copy_char_table (arg
);
434 if (BOOL_VECTOR_P (arg
))
436 EMACS_INT nbits
= bool_vector_size (arg
);
437 ptrdiff_t nbytes
= bool_vector_bytes (nbits
);
438 Lisp_Object val
= make_uninit_bool_vector (nbits
);
439 memcpy (bool_vector_data (val
), bool_vector_data (arg
), nbytes
);
443 if (!CONSP (arg
) && !VECTORP (arg
) && !STRINGP (arg
))
444 wrong_type_argument (Qsequencep
, arg
);
446 return concat (1, &arg
, XTYPE (arg
), 0);
449 /* This structure holds information of an argument of `concat' that is
450 a string and has text properties to be copied. */
453 ptrdiff_t argnum
; /* refer to ARGS (arguments of `concat') */
454 ptrdiff_t from
; /* refer to ARGS[argnum] (argument string) */
455 ptrdiff_t to
; /* refer to VAL (the target string) */
459 concat (ptrdiff_t nargs
, Lisp_Object
*args
,
460 enum Lisp_Type target_type
, bool last_special
)
466 ptrdiff_t toindex_byte
= 0;
467 EMACS_INT result_len
;
468 EMACS_INT result_len_byte
;
470 Lisp_Object last_tail
;
473 /* When we make a multibyte string, we can't copy text properties
474 while concatenating each string because the length of resulting
475 string can't be decided until we finish the whole concatenation.
476 So, we record strings that have text properties to be copied
477 here, and copy the text properties after the concatenation. */
478 struct textprop_rec
*textprops
= NULL
;
479 /* Number of elements in textprops. */
480 ptrdiff_t num_textprops
= 0;
485 /* In append, the last arg isn't treated like the others */
486 if (last_special
&& nargs
> 0)
489 last_tail
= args
[nargs
];
494 /* Check each argument. */
495 for (argnum
= 0; argnum
< nargs
; argnum
++)
498 if (!(CONSP (this) || NILP (this) || VECTORP (this) || STRINGP (this)
499 || COMPILEDP (this) || BOOL_VECTOR_P (this)))
500 wrong_type_argument (Qsequencep
, this);
503 /* Compute total length in chars of arguments in RESULT_LEN.
504 If desired output is a string, also compute length in bytes
505 in RESULT_LEN_BYTE, and determine in SOME_MULTIBYTE
506 whether the result should be a multibyte string. */
510 for (argnum
= 0; argnum
< nargs
; argnum
++)
514 len
= XFASTINT (Flength (this));
515 if (target_type
== Lisp_String
)
517 /* We must count the number of bytes needed in the string
518 as well as the number of characters. */
522 ptrdiff_t this_len_byte
;
524 if (VECTORP (this) || COMPILEDP (this))
525 for (i
= 0; i
< len
; i
++)
528 CHECK_CHARACTER (ch
);
530 this_len_byte
= CHAR_BYTES (c
);
531 if (STRING_BYTES_BOUND
- result_len_byte
< this_len_byte
)
533 result_len_byte
+= this_len_byte
;
534 if (! ASCII_CHAR_P (c
) && ! CHAR_BYTE8_P (c
))
537 else if (BOOL_VECTOR_P (this) && bool_vector_size (this) > 0)
538 wrong_type_argument (Qintegerp
, Faref (this, make_number (0)));
539 else if (CONSP (this))
540 for (; CONSP (this); this = XCDR (this))
543 CHECK_CHARACTER (ch
);
545 this_len_byte
= CHAR_BYTES (c
);
546 if (STRING_BYTES_BOUND
- result_len_byte
< this_len_byte
)
548 result_len_byte
+= this_len_byte
;
549 if (! ASCII_CHAR_P (c
) && ! CHAR_BYTE8_P (c
))
552 else if (STRINGP (this))
554 if (STRING_MULTIBYTE (this))
557 this_len_byte
= SBYTES (this);
560 this_len_byte
= count_size_as_multibyte (SDATA (this),
562 if (STRING_BYTES_BOUND
- result_len_byte
< this_len_byte
)
564 result_len_byte
+= this_len_byte
;
569 if (MOST_POSITIVE_FIXNUM
< result_len
)
570 memory_full (SIZE_MAX
);
573 if (! some_multibyte
)
574 result_len_byte
= result_len
;
576 /* Create the output object. */
577 if (target_type
== Lisp_Cons
)
578 val
= Fmake_list (make_number (result_len
), Qnil
);
579 else if (target_type
== Lisp_Vectorlike
)
580 val
= Fmake_vector (make_number (result_len
), Qnil
);
581 else if (some_multibyte
)
582 val
= make_uninit_multibyte_string (result_len
, result_len_byte
);
584 val
= make_uninit_string (result_len
);
586 /* In `append', if all but last arg are nil, return last arg. */
587 if (target_type
== Lisp_Cons
&& EQ (val
, Qnil
))
590 /* Copy the contents of the args into the result. */
592 tail
= val
, toindex
= -1; /* -1 in toindex is flag we are making a list */
594 toindex
= 0, toindex_byte
= 0;
598 SAFE_NALLOCA (textprops
, 1, nargs
);
600 for (argnum
= 0; argnum
< nargs
; argnum
++)
603 ptrdiff_t thisleni
= 0;
604 register ptrdiff_t thisindex
= 0;
605 register ptrdiff_t thisindex_byte
= 0;
609 thislen
= Flength (this), thisleni
= XINT (thislen
);
611 /* Between strings of the same kind, copy fast. */
612 if (STRINGP (this) && STRINGP (val
)
613 && STRING_MULTIBYTE (this) == some_multibyte
)
615 ptrdiff_t thislen_byte
= SBYTES (this);
617 memcpy (SDATA (val
) + toindex_byte
, SDATA (this), SBYTES (this));
618 if (string_intervals (this))
620 textprops
[num_textprops
].argnum
= argnum
;
621 textprops
[num_textprops
].from
= 0;
622 textprops
[num_textprops
++].to
= toindex
;
624 toindex_byte
+= thislen_byte
;
627 /* Copy a single-byte string to a multibyte string. */
628 else if (STRINGP (this) && STRINGP (val
))
630 if (string_intervals (this))
632 textprops
[num_textprops
].argnum
= argnum
;
633 textprops
[num_textprops
].from
= 0;
634 textprops
[num_textprops
++].to
= toindex
;
636 toindex_byte
+= copy_text (SDATA (this),
637 SDATA (val
) + toindex_byte
,
638 SCHARS (this), 0, 1);
642 /* Copy element by element. */
645 register Lisp_Object elt
;
647 /* Fetch next element of `this' arg into `elt', or break if
648 `this' is exhausted. */
649 if (NILP (this)) break;
651 elt
= XCAR (this), this = XCDR (this);
652 else if (thisindex
>= thisleni
)
654 else if (STRINGP (this))
657 if (STRING_MULTIBYTE (this))
658 FETCH_STRING_CHAR_ADVANCE_NO_CHECK (c
, this,
663 c
= SREF (this, thisindex
); thisindex
++;
664 if (some_multibyte
&& !ASCII_CHAR_P (c
))
665 c
= BYTE8_TO_CHAR (c
);
667 XSETFASTINT (elt
, c
);
669 else if (BOOL_VECTOR_P (this))
671 elt
= bool_vector_ref (this, thisindex
);
676 elt
= AREF (this, thisindex
);
680 /* Store this element into the result. */
687 else if (VECTORP (val
))
689 ASET (val
, toindex
, elt
);
695 CHECK_CHARACTER (elt
);
698 toindex_byte
+= CHAR_STRING (c
, SDATA (val
) + toindex_byte
);
700 SSET (val
, toindex_byte
++, c
);
706 XSETCDR (prev
, last_tail
);
708 if (num_textprops
> 0)
711 ptrdiff_t last_to_end
= -1;
713 for (argnum
= 0; argnum
< num_textprops
; argnum
++)
715 this = args
[textprops
[argnum
].argnum
];
716 props
= text_property_list (this,
718 make_number (SCHARS (this)),
720 /* If successive arguments have properties, be sure that the
721 value of `composition' property be the copy. */
722 if (last_to_end
== textprops
[argnum
].to
)
723 make_composition_value_copy (props
);
724 add_text_properties_from_list (val
, props
,
725 make_number (textprops
[argnum
].to
));
726 last_to_end
= textprops
[argnum
].to
+ SCHARS (this);
734 static Lisp_Object string_char_byte_cache_string
;
735 static ptrdiff_t string_char_byte_cache_charpos
;
736 static ptrdiff_t string_char_byte_cache_bytepos
;
739 clear_string_char_byte_cache (void)
741 string_char_byte_cache_string
= Qnil
;
744 /* Return the byte index corresponding to CHAR_INDEX in STRING. */
747 string_char_to_byte (Lisp_Object string
, ptrdiff_t char_index
)
750 ptrdiff_t best_below
, best_below_byte
;
751 ptrdiff_t best_above
, best_above_byte
;
753 best_below
= best_below_byte
= 0;
754 best_above
= SCHARS (string
);
755 best_above_byte
= SBYTES (string
);
756 if (best_above
== best_above_byte
)
759 if (EQ (string
, string_char_byte_cache_string
))
761 if (string_char_byte_cache_charpos
< char_index
)
763 best_below
= string_char_byte_cache_charpos
;
764 best_below_byte
= string_char_byte_cache_bytepos
;
768 best_above
= string_char_byte_cache_charpos
;
769 best_above_byte
= string_char_byte_cache_bytepos
;
773 if (char_index
- best_below
< best_above
- char_index
)
775 unsigned char *p
= SDATA (string
) + best_below_byte
;
777 while (best_below
< char_index
)
779 p
+= BYTES_BY_CHAR_HEAD (*p
);
782 i_byte
= p
- SDATA (string
);
786 unsigned char *p
= SDATA (string
) + best_above_byte
;
788 while (best_above
> char_index
)
791 while (!CHAR_HEAD_P (*p
)) p
--;
794 i_byte
= p
- SDATA (string
);
797 string_char_byte_cache_bytepos
= i_byte
;
798 string_char_byte_cache_charpos
= char_index
;
799 string_char_byte_cache_string
= string
;
804 /* Return the character index corresponding to BYTE_INDEX in STRING. */
807 string_byte_to_char (Lisp_Object string
, ptrdiff_t byte_index
)
810 ptrdiff_t best_below
, best_below_byte
;
811 ptrdiff_t best_above
, best_above_byte
;
813 best_below
= best_below_byte
= 0;
814 best_above
= SCHARS (string
);
815 best_above_byte
= SBYTES (string
);
816 if (best_above
== best_above_byte
)
819 if (EQ (string
, string_char_byte_cache_string
))
821 if (string_char_byte_cache_bytepos
< byte_index
)
823 best_below
= string_char_byte_cache_charpos
;
824 best_below_byte
= string_char_byte_cache_bytepos
;
828 best_above
= string_char_byte_cache_charpos
;
829 best_above_byte
= string_char_byte_cache_bytepos
;
833 if (byte_index
- best_below_byte
< best_above_byte
- byte_index
)
835 unsigned char *p
= SDATA (string
) + best_below_byte
;
836 unsigned char *pend
= SDATA (string
) + byte_index
;
840 p
+= BYTES_BY_CHAR_HEAD (*p
);
844 i_byte
= p
- SDATA (string
);
848 unsigned char *p
= SDATA (string
) + best_above_byte
;
849 unsigned char *pbeg
= SDATA (string
) + byte_index
;
854 while (!CHAR_HEAD_P (*p
)) p
--;
858 i_byte
= p
- SDATA (string
);
861 string_char_byte_cache_bytepos
= i_byte
;
862 string_char_byte_cache_charpos
= i
;
863 string_char_byte_cache_string
= string
;
868 /* Convert STRING to a multibyte string. */
871 string_make_multibyte (Lisp_Object string
)
878 if (STRING_MULTIBYTE (string
))
881 nbytes
= count_size_as_multibyte (SDATA (string
),
883 /* If all the chars are ASCII, they won't need any more bytes
884 once converted. In that case, we can return STRING itself. */
885 if (nbytes
== SBYTES (string
))
888 buf
= SAFE_ALLOCA (nbytes
);
889 copy_text (SDATA (string
), buf
, SBYTES (string
),
892 ret
= make_multibyte_string ((char *) buf
, SCHARS (string
), nbytes
);
899 /* Convert STRING (if unibyte) to a multibyte string without changing
900 the number of characters. Characters 0200 trough 0237 are
901 converted to eight-bit characters. */
904 string_to_multibyte (Lisp_Object string
)
911 if (STRING_MULTIBYTE (string
))
914 nbytes
= count_size_as_multibyte (SDATA (string
), SBYTES (string
));
915 /* If all the chars are ASCII, they won't need any more bytes once
917 if (nbytes
== SBYTES (string
))
918 return make_multibyte_string (SSDATA (string
), nbytes
, nbytes
);
920 buf
= SAFE_ALLOCA (nbytes
);
921 memcpy (buf
, SDATA (string
), SBYTES (string
));
922 str_to_multibyte (buf
, nbytes
, SBYTES (string
));
924 ret
= make_multibyte_string ((char *) buf
, SCHARS (string
), nbytes
);
931 /* Convert STRING to a single-byte string. */
934 string_make_unibyte (Lisp_Object string
)
941 if (! STRING_MULTIBYTE (string
))
944 nchars
= SCHARS (string
);
946 buf
= SAFE_ALLOCA (nchars
);
947 copy_text (SDATA (string
), buf
, SBYTES (string
),
950 ret
= make_unibyte_string ((char *) buf
, nchars
);
956 DEFUN ("string-make-multibyte", Fstring_make_multibyte
, Sstring_make_multibyte
,
958 doc
: /* Return the multibyte equivalent of STRING.
959 If STRING is unibyte and contains non-ASCII characters, the function
960 `unibyte-char-to-multibyte' is used to convert each unibyte character
961 to a multibyte character. In this case, the returned string is a
962 newly created string with no text properties. If STRING is multibyte
963 or entirely ASCII, it is returned unchanged. In particular, when
964 STRING is unibyte and entirely ASCII, the returned string is unibyte.
965 \(When the characters are all ASCII, Emacs primitives will treat the
966 string the same way whether it is unibyte or multibyte.) */)
969 CHECK_STRING (string
);
971 return string_make_multibyte (string
);
974 DEFUN ("string-make-unibyte", Fstring_make_unibyte
, Sstring_make_unibyte
,
976 doc
: /* Return the unibyte equivalent of STRING.
977 Multibyte character codes are converted to unibyte according to
978 `nonascii-translation-table' or, if that is nil, `nonascii-insert-offset'.
979 If the lookup in the translation table fails, this function takes just
980 the low 8 bits of each character. */)
983 CHECK_STRING (string
);
985 return string_make_unibyte (string
);
988 DEFUN ("string-as-unibyte", Fstring_as_unibyte
, Sstring_as_unibyte
,
990 doc
: /* Return a unibyte string with the same individual bytes as STRING.
991 If STRING is unibyte, the result is STRING itself.
992 Otherwise it is a newly created string, with no text properties.
993 If STRING is multibyte and contains a character of charset
994 `eight-bit', it is converted to the corresponding single byte. */)
997 CHECK_STRING (string
);
999 if (STRING_MULTIBYTE (string
))
1001 unsigned char *str
= (unsigned char *) xlispstrdup (string
);
1002 ptrdiff_t bytes
= str_as_unibyte (str
, SBYTES (string
));
1004 string
= make_unibyte_string ((char *) str
, bytes
);
1010 DEFUN ("string-as-multibyte", Fstring_as_multibyte
, Sstring_as_multibyte
,
1012 doc
: /* Return a multibyte string with the same individual bytes as STRING.
1013 If STRING is multibyte, the result is STRING itself.
1014 Otherwise it is a newly created string, with no text properties.
1016 If STRING is unibyte and contains an individual 8-bit byte (i.e. not
1017 part of a correct utf-8 sequence), it is converted to the corresponding
1018 multibyte character of charset `eight-bit'.
1019 See also `string-to-multibyte'.
1021 Beware, this often doesn't really do what you think it does.
1022 It is similar to (decode-coding-string STRING 'utf-8-emacs).
1023 If you're not sure, whether to use `string-as-multibyte' or
1024 `string-to-multibyte', use `string-to-multibyte'. */)
1025 (Lisp_Object string
)
1027 CHECK_STRING (string
);
1029 if (! STRING_MULTIBYTE (string
))
1031 Lisp_Object new_string
;
1032 ptrdiff_t nchars
, nbytes
;
1034 parse_str_as_multibyte (SDATA (string
),
1037 new_string
= make_uninit_multibyte_string (nchars
, nbytes
);
1038 memcpy (SDATA (new_string
), SDATA (string
), SBYTES (string
));
1039 if (nbytes
!= SBYTES (string
))
1040 str_as_multibyte (SDATA (new_string
), nbytes
,
1041 SBYTES (string
), NULL
);
1042 string
= new_string
;
1043 set_string_intervals (string
, NULL
);
1048 DEFUN ("string-to-multibyte", Fstring_to_multibyte
, Sstring_to_multibyte
,
1050 doc
: /* Return a multibyte string with the same individual chars as STRING.
1051 If STRING is multibyte, the result is STRING itself.
1052 Otherwise it is a newly created string, with no text properties.
1054 If STRING is unibyte and contains an 8-bit byte, it is converted to
1055 the corresponding multibyte character of charset `eight-bit'.
1057 This differs from `string-as-multibyte' by converting each byte of a correct
1058 utf-8 sequence to an eight-bit character, not just bytes that don't form a
1059 correct sequence. */)
1060 (Lisp_Object string
)
1062 CHECK_STRING (string
);
1064 return string_to_multibyte (string
);
1067 DEFUN ("string-to-unibyte", Fstring_to_unibyte
, Sstring_to_unibyte
,
1069 doc
: /* Return a unibyte string with the same individual chars as STRING.
1070 If STRING is unibyte, the result is STRING itself.
1071 Otherwise it is a newly created string, with no text properties,
1072 where each `eight-bit' character is converted to the corresponding byte.
1073 If STRING contains a non-ASCII, non-`eight-bit' character,
1074 an error is signaled. */)
1075 (Lisp_Object string
)
1077 CHECK_STRING (string
);
1079 if (STRING_MULTIBYTE (string
))
1081 ptrdiff_t chars
= SCHARS (string
);
1082 unsigned char *str
= xmalloc (chars
);
1083 ptrdiff_t converted
= str_to_unibyte (SDATA (string
), str
, chars
);
1085 if (converted
< chars
)
1086 error ("Can't convert the %"pD
"dth character to unibyte", converted
);
1087 string
= make_unibyte_string ((char *) str
, chars
);
1094 DEFUN ("copy-alist", Fcopy_alist
, Scopy_alist
, 1, 1, 0,
1095 doc
: /* Return a copy of ALIST.
1096 This is an alist which represents the same mapping from objects to objects,
1097 but does not share the alist structure with ALIST.
1098 The objects mapped (cars and cdrs of elements of the alist)
1099 are shared, however.
1100 Elements of ALIST that are not conses are also shared. */)
1103 register Lisp_Object tem
;
1108 alist
= concat (1, &alist
, Lisp_Cons
, 0);
1109 for (tem
= alist
; CONSP (tem
); tem
= XCDR (tem
))
1111 register Lisp_Object car
;
1115 XSETCAR (tem
, Fcons (XCAR (car
), XCDR (car
)));
1120 DEFUN ("substring", Fsubstring
, Ssubstring
, 2, 3, 0,
1121 doc
: /* Return a new string whose contents are a substring of STRING.
1122 The returned string consists of the characters between index FROM
1123 \(inclusive) and index TO (exclusive) of STRING. FROM and TO are
1124 zero-indexed: 0 means the first character of STRING. Negative values
1125 are counted from the end of STRING. If TO is nil, the substring runs
1126 to the end of STRING.
1128 The STRING argument may also be a vector. In that case, the return
1129 value is a new vector that contains the elements between index FROM
1130 \(inclusive) and index TO (exclusive) of that vector argument. */)
1131 (Lisp_Object string
, register Lisp_Object from
, Lisp_Object to
)
1135 EMACS_INT from_char
, to_char
;
1137 CHECK_VECTOR_OR_STRING (string
);
1138 CHECK_NUMBER (from
);
1140 if (STRINGP (string
))
1141 size
= SCHARS (string
);
1143 size
= ASIZE (string
);
1151 to_char
= XINT (to
);
1156 from_char
= XINT (from
);
1159 if (!(0 <= from_char
&& from_char
<= to_char
&& to_char
<= size
))
1160 args_out_of_range_3 (string
, make_number (from_char
),
1161 make_number (to_char
));
1163 if (STRINGP (string
))
1166 (NILP (to
) ? SBYTES (string
) : string_char_to_byte (string
, to_char
));
1167 ptrdiff_t from_byte
= string_char_to_byte (string
, from_char
);
1168 res
= make_specified_string (SSDATA (string
) + from_byte
,
1169 to_char
- from_char
, to_byte
- from_byte
,
1170 STRING_MULTIBYTE (string
));
1171 copy_text_properties (make_number (from_char
), make_number (to_char
),
1172 string
, make_number (0), res
, Qnil
);
1175 res
= Fvector (to_char
- from_char
, aref_addr (string
, from_char
));
1181 DEFUN ("substring-no-properties", Fsubstring_no_properties
, Ssubstring_no_properties
, 1, 3, 0,
1182 doc
: /* Return a substring of STRING, without text properties.
1183 It starts at index FROM and ends before TO.
1184 TO may be nil or omitted; then the substring runs to the end of STRING.
1185 If FROM is nil or omitted, the substring starts at the beginning of STRING.
1186 If FROM or TO is negative, it counts from the end.
1188 With one argument, just copy STRING without its properties. */)
1189 (Lisp_Object string
, register Lisp_Object from
, Lisp_Object to
)
1192 EMACS_INT from_char
, to_char
;
1193 ptrdiff_t from_byte
, to_byte
;
1195 CHECK_STRING (string
);
1197 size
= SCHARS (string
);
1203 CHECK_NUMBER (from
);
1204 from_char
= XINT (from
);
1214 to_char
= XINT (to
);
1219 if (!(0 <= from_char
&& from_char
<= to_char
&& to_char
<= size
))
1220 args_out_of_range_3 (string
, make_number (from_char
),
1221 make_number (to_char
));
1223 from_byte
= NILP (from
) ? 0 : string_char_to_byte (string
, from_char
);
1225 NILP (to
) ? SBYTES (string
) : string_char_to_byte (string
, to_char
);
1226 return make_specified_string (SSDATA (string
) + from_byte
,
1227 to_char
- from_char
, to_byte
- from_byte
,
1228 STRING_MULTIBYTE (string
));
1231 /* Extract a substring of STRING, giving start and end positions
1232 both in characters and in bytes. */
1235 substring_both (Lisp_Object string
, ptrdiff_t from
, ptrdiff_t from_byte
,
1236 ptrdiff_t to
, ptrdiff_t to_byte
)
1241 CHECK_VECTOR_OR_STRING (string
);
1243 size
= STRINGP (string
) ? SCHARS (string
) : ASIZE (string
);
1245 if (!(0 <= from
&& from
<= to
&& to
<= size
))
1246 args_out_of_range_3 (string
, make_number (from
), make_number (to
));
1248 if (STRINGP (string
))
1250 res
= make_specified_string (SSDATA (string
) + from_byte
,
1251 to
- from
, to_byte
- from_byte
,
1252 STRING_MULTIBYTE (string
));
1253 copy_text_properties (make_number (from
), make_number (to
),
1254 string
, make_number (0), res
, Qnil
);
1257 res
= Fvector (to
- from
, aref_addr (string
, from
));
1262 DEFUN ("nthcdr", Fnthcdr
, Snthcdr
, 2, 2, 0,
1263 doc
: /* Take cdr N times on LIST, return the result. */)
1264 (Lisp_Object n
, Lisp_Object list
)
1269 for (i
= 0; i
< num
&& !NILP (list
); i
++)
1272 CHECK_LIST_CONS (list
, list
);
1278 DEFUN ("nth", Fnth
, Snth
, 2, 2, 0,
1279 doc
: /* Return the Nth element of LIST.
1280 N counts from zero. If LIST is not that long, nil is returned. */)
1281 (Lisp_Object n
, Lisp_Object list
)
1283 return Fcar (Fnthcdr (n
, list
));
1286 DEFUN ("elt", Felt
, Selt
, 2, 2, 0,
1287 doc
: /* Return element of SEQUENCE at index N. */)
1288 (register Lisp_Object sequence
, Lisp_Object n
)
1291 if (CONSP (sequence
) || NILP (sequence
))
1292 return Fcar (Fnthcdr (n
, sequence
));
1294 /* Faref signals a "not array" error, so check here. */
1295 CHECK_ARRAY (sequence
, Qsequencep
);
1296 return Faref (sequence
, n
);
1299 DEFUN ("member", Fmember
, Smember
, 2, 2, 0,
1300 doc
: /* Return non-nil if ELT is an element of LIST. Comparison done with `equal'.
1301 The value is actually the tail of LIST whose car is ELT. */)
1302 (register Lisp_Object elt
, Lisp_Object list
)
1304 register Lisp_Object tail
;
1305 for (tail
= list
; CONSP (tail
); tail
= XCDR (tail
))
1307 register Lisp_Object tem
;
1308 CHECK_LIST_CONS (tail
, list
);
1310 if (! NILP (Fequal (elt
, tem
)))
1317 DEFUN ("memq", Fmemq
, Smemq
, 2, 2, 0,
1318 doc
: /* Return non-nil if ELT is an element of LIST. Comparison done with `eq'.
1319 The value is actually the tail of LIST whose car is ELT. */)
1320 (register Lisp_Object elt
, Lisp_Object list
)
1324 if (!CONSP (list
) || EQ (XCAR (list
), elt
))
1328 if (!CONSP (list
) || EQ (XCAR (list
), elt
))
1332 if (!CONSP (list
) || EQ (XCAR (list
), elt
))
1343 DEFUN ("memql", Fmemql
, Smemql
, 2, 2, 0,
1344 doc
: /* Return non-nil if ELT is an element of LIST. Comparison done with `eql'.
1345 The value is actually the tail of LIST whose car is ELT. */)
1346 (register Lisp_Object elt
, Lisp_Object list
)
1348 register Lisp_Object tail
;
1351 return Fmemq (elt
, list
);
1353 for (tail
= list
; CONSP (tail
); tail
= XCDR (tail
))
1355 register Lisp_Object tem
;
1356 CHECK_LIST_CONS (tail
, list
);
1358 if (FLOATP (tem
) && internal_equal (elt
, tem
, 0, 0, Qnil
))
1365 DEFUN ("assq", Fassq
, Sassq
, 2, 2, 0,
1366 doc
: /* Return non-nil if KEY is `eq' to the car of an element of LIST.
1367 The value is actually the first element of LIST whose car is KEY.
1368 Elements of LIST that are not conses are ignored. */)
1369 (Lisp_Object key
, Lisp_Object list
)
1374 || (CONSP (XCAR (list
))
1375 && EQ (XCAR (XCAR (list
)), key
)))
1380 || (CONSP (XCAR (list
))
1381 && EQ (XCAR (XCAR (list
)), key
)))
1386 || (CONSP (XCAR (list
))
1387 && EQ (XCAR (XCAR (list
)), key
)))
1397 /* Like Fassq but never report an error and do not allow quits.
1398 Use only on lists known never to be circular. */
1401 assq_no_quit (Lisp_Object key
, Lisp_Object list
)
1404 && (!CONSP (XCAR (list
))
1405 || !EQ (XCAR (XCAR (list
)), key
)))
1408 return CAR_SAFE (list
);
1411 DEFUN ("assoc", Fassoc
, Sassoc
, 2, 2, 0,
1412 doc
: /* Return non-nil if KEY is `equal' to the car of an element of LIST.
1413 The value is actually the first element of LIST whose car equals KEY. */)
1414 (Lisp_Object key
, Lisp_Object list
)
1421 || (CONSP (XCAR (list
))
1422 && (car
= XCAR (XCAR (list
)),
1423 EQ (car
, key
) || !NILP (Fequal (car
, key
)))))
1428 || (CONSP (XCAR (list
))
1429 && (car
= XCAR (XCAR (list
)),
1430 EQ (car
, key
) || !NILP (Fequal (car
, key
)))))
1435 || (CONSP (XCAR (list
))
1436 && (car
= XCAR (XCAR (list
)),
1437 EQ (car
, key
) || !NILP (Fequal (car
, key
)))))
1447 /* Like Fassoc but never report an error and do not allow quits.
1448 Use only on lists known never to be circular. */
1451 assoc_no_quit (Lisp_Object key
, Lisp_Object list
)
1454 && (!CONSP (XCAR (list
))
1455 || (!EQ (XCAR (XCAR (list
)), key
)
1456 && NILP (Fequal (XCAR (XCAR (list
)), key
)))))
1459 return CONSP (list
) ? XCAR (list
) : Qnil
;
1462 DEFUN ("rassq", Frassq
, Srassq
, 2, 2, 0,
1463 doc
: /* Return non-nil if KEY is `eq' to the cdr of an element of LIST.
1464 The value is actually the first element of LIST whose cdr is KEY. */)
1465 (register Lisp_Object key
, Lisp_Object list
)
1470 || (CONSP (XCAR (list
))
1471 && EQ (XCDR (XCAR (list
)), key
)))
1476 || (CONSP (XCAR (list
))
1477 && EQ (XCDR (XCAR (list
)), key
)))
1482 || (CONSP (XCAR (list
))
1483 && EQ (XCDR (XCAR (list
)), key
)))
1493 DEFUN ("rassoc", Frassoc
, Srassoc
, 2, 2, 0,
1494 doc
: /* Return non-nil if KEY is `equal' to the cdr of an element of LIST.
1495 The value is actually the first element of LIST whose cdr equals KEY. */)
1496 (Lisp_Object key
, Lisp_Object list
)
1503 || (CONSP (XCAR (list
))
1504 && (cdr
= XCDR (XCAR (list
)),
1505 EQ (cdr
, key
) || !NILP (Fequal (cdr
, key
)))))
1510 || (CONSP (XCAR (list
))
1511 && (cdr
= XCDR (XCAR (list
)),
1512 EQ (cdr
, key
) || !NILP (Fequal (cdr
, key
)))))
1517 || (CONSP (XCAR (list
))
1518 && (cdr
= XCDR (XCAR (list
)),
1519 EQ (cdr
, key
) || !NILP (Fequal (cdr
, key
)))))
1529 DEFUN ("delq", Fdelq
, Sdelq
, 2, 2, 0,
1530 doc
: /* Delete members of LIST which are `eq' to ELT, and return the result.
1531 More precisely, this function skips any members `eq' to ELT at the
1532 front of LIST, then removes members `eq' to ELT from the remaining
1533 sublist by modifying its list structure, then returns the resulting
1536 Write `(setq foo (delq element foo))' to be sure of correctly changing
1537 the value of a list `foo'. */)
1538 (register Lisp_Object elt
, Lisp_Object list
)
1540 Lisp_Object tail
, tortoise
, prev
= Qnil
;
1543 FOR_EACH_TAIL (tail
, list
, tortoise
, skip
)
1545 Lisp_Object tem
= XCAR (tail
);
1551 Fsetcdr (prev
, XCDR (tail
));
1559 DEFUN ("delete", Fdelete
, Sdelete
, 2, 2, 0,
1560 doc
: /* Delete members of SEQ which are `equal' to ELT, and return the result.
1561 SEQ must be a sequence (i.e. a list, a vector, or a string).
1562 The return value is a sequence of the same type.
1564 If SEQ is a list, this behaves like `delq', except that it compares
1565 with `equal' instead of `eq'. In particular, it may remove elements
1566 by altering the list structure.
1568 If SEQ is not a list, deletion is never performed destructively;
1569 instead this function creates and returns a new vector or string.
1571 Write `(setq foo (delete element foo))' to be sure of correctly
1572 changing the value of a sequence `foo'. */)
1573 (Lisp_Object elt
, Lisp_Object seq
)
1579 for (i
= n
= 0; i
< ASIZE (seq
); ++i
)
1580 if (NILP (Fequal (AREF (seq
, i
), elt
)))
1583 if (n
!= ASIZE (seq
))
1585 struct Lisp_Vector
*p
= allocate_vector (n
);
1587 for (i
= n
= 0; i
< ASIZE (seq
); ++i
)
1588 if (NILP (Fequal (AREF (seq
, i
), elt
)))
1589 p
->contents
[n
++] = AREF (seq
, i
);
1591 XSETVECTOR (seq
, p
);
1594 else if (STRINGP (seq
))
1596 ptrdiff_t i
, ibyte
, nchars
, nbytes
, cbytes
;
1599 for (i
= nchars
= nbytes
= ibyte
= 0;
1601 ++i
, ibyte
+= cbytes
)
1603 if (STRING_MULTIBYTE (seq
))
1605 c
= STRING_CHAR (SDATA (seq
) + ibyte
);
1606 cbytes
= CHAR_BYTES (c
);
1614 if (!INTEGERP (elt
) || c
!= XINT (elt
))
1621 if (nchars
!= SCHARS (seq
))
1625 tem
= make_uninit_multibyte_string (nchars
, nbytes
);
1626 if (!STRING_MULTIBYTE (seq
))
1627 STRING_SET_UNIBYTE (tem
);
1629 for (i
= nchars
= nbytes
= ibyte
= 0;
1631 ++i
, ibyte
+= cbytes
)
1633 if (STRING_MULTIBYTE (seq
))
1635 c
= STRING_CHAR (SDATA (seq
) + ibyte
);
1636 cbytes
= CHAR_BYTES (c
);
1644 if (!INTEGERP (elt
) || c
!= XINT (elt
))
1646 unsigned char *from
= SDATA (seq
) + ibyte
;
1647 unsigned char *to
= SDATA (tem
) + nbytes
;
1653 for (n
= cbytes
; n
--; )
1663 Lisp_Object tail
, prev
;
1665 for (tail
= seq
, prev
= Qnil
; CONSP (tail
); tail
= XCDR (tail
))
1667 CHECK_LIST_CONS (tail
, seq
);
1669 if (!NILP (Fequal (elt
, XCAR (tail
))))
1674 Fsetcdr (prev
, XCDR (tail
));
1685 DEFUN ("nreverse", Fnreverse
, Snreverse
, 1, 1, 0,
1686 doc
: /* Reverse LIST by modifying cdr pointers.
1687 Return the reversed list. Expects a properly nil-terminated list. */)
1690 register Lisp_Object prev
, tail
, next
;
1692 if (NILP (list
)) return list
;
1695 while (!NILP (tail
))
1698 CHECK_LIST_CONS (tail
, tail
);
1700 Fsetcdr (tail
, prev
);
1707 DEFUN ("reverse", Freverse
, Sreverse
, 1, 1, 0,
1708 doc
: /* Reverse LIST, copying. Return the reversed list.
1709 See also the function `nreverse', which is used more often. */)
1714 for (new = Qnil
; CONSP (list
); list
= XCDR (list
))
1717 new = Fcons (XCAR (list
), new);
1719 CHECK_LIST_END (list
, list
);
1723 DEFUN ("sort", Fsort
, Ssort
, 2, 2, 0,
1724 doc
: /* Sort LIST, stably, comparing elements using PREDICATE.
1725 Returns the sorted list. LIST is modified by side effects.
1726 PREDICATE is called with two elements of LIST, and should return non-nil
1727 if the first element should sort before the second. */)
1728 (Lisp_Object list
, Lisp_Object predicate
)
1730 Lisp_Object front
, back
;
1731 register Lisp_Object len
, tem
;
1732 struct gcpro gcpro1
, gcpro2
;
1736 len
= Flength (list
);
1737 length
= XINT (len
);
1741 XSETINT (len
, (length
/ 2) - 1);
1742 tem
= Fnthcdr (len
, list
);
1744 Fsetcdr (tem
, Qnil
);
1746 GCPRO2 (front
, back
);
1747 front
= Fsort (front
, predicate
);
1748 back
= Fsort (back
, predicate
);
1750 return merge (front
, back
, predicate
);
1754 merge (Lisp_Object org_l1
, Lisp_Object org_l2
, Lisp_Object pred
)
1757 register Lisp_Object tail
;
1759 register Lisp_Object l1
, l2
;
1760 struct gcpro gcpro1
, gcpro2
, gcpro3
, gcpro4
;
1767 /* It is sufficient to protect org_l1 and org_l2.
1768 When l1 and l2 are updated, we copy the new values
1769 back into the org_ vars. */
1770 GCPRO4 (org_l1
, org_l2
, pred
, value
);
1790 tem
= call2 (pred
, Fcar (l2
), Fcar (l1
));
1806 Fsetcdr (tail
, tem
);
1812 /* This does not check for quits. That is safe since it must terminate. */
1814 DEFUN ("plist-get", Fplist_get
, Splist_get
, 2, 2, 0,
1815 doc
: /* Extract a value from a property list.
1816 PLIST is a property list, which is a list of the form
1817 \(PROP1 VALUE1 PROP2 VALUE2...). This function returns the value
1818 corresponding to the given PROP, or nil if PROP is not one of the
1819 properties on the list. This function never signals an error. */)
1820 (Lisp_Object plist
, Lisp_Object prop
)
1822 Lisp_Object tail
, halftail
;
1824 /* halftail is used to detect circular lists. */
1825 tail
= halftail
= plist
;
1826 while (CONSP (tail
) && CONSP (XCDR (tail
)))
1828 if (EQ (prop
, XCAR (tail
)))
1829 return XCAR (XCDR (tail
));
1831 tail
= XCDR (XCDR (tail
));
1832 halftail
= XCDR (halftail
);
1833 if (EQ (tail
, halftail
))
1840 DEFUN ("get", Fget
, Sget
, 2, 2, 0,
1841 doc
: /* Return the value of SYMBOL's PROPNAME property.
1842 This is the last value stored with `(put SYMBOL PROPNAME VALUE)'. */)
1843 (Lisp_Object symbol
, Lisp_Object propname
)
1845 CHECK_SYMBOL (symbol
);
1846 return Fplist_get (XSYMBOL (symbol
)->plist
, propname
);
1849 DEFUN ("plist-put", Fplist_put
, Splist_put
, 3, 3, 0,
1850 doc
: /* Change value in PLIST of PROP to VAL.
1851 PLIST is a property list, which is a list of the form
1852 \(PROP1 VALUE1 PROP2 VALUE2 ...). PROP is a symbol and VAL is any object.
1853 If PROP is already a property on the list, its value is set to VAL,
1854 otherwise the new PROP VAL pair is added. The new plist is returned;
1855 use `(setq x (plist-put x prop val))' to be sure to use the new value.
1856 The PLIST is modified by side effects. */)
1857 (Lisp_Object plist
, register Lisp_Object prop
, Lisp_Object val
)
1859 register Lisp_Object tail
, prev
;
1860 Lisp_Object newcell
;
1862 for (tail
= plist
; CONSP (tail
) && CONSP (XCDR (tail
));
1863 tail
= XCDR (XCDR (tail
)))
1865 if (EQ (prop
, XCAR (tail
)))
1867 Fsetcar (XCDR (tail
), val
);
1874 newcell
= Fcons (prop
, Fcons (val
, NILP (prev
) ? plist
: XCDR (XCDR (prev
))));
1878 Fsetcdr (XCDR (prev
), newcell
);
1882 DEFUN ("put", Fput
, Sput
, 3, 3, 0,
1883 doc
: /* Store SYMBOL's PROPNAME property with value VALUE.
1884 It can be retrieved with `(get SYMBOL PROPNAME)'. */)
1885 (Lisp_Object symbol
, Lisp_Object propname
, Lisp_Object value
)
1887 CHECK_SYMBOL (symbol
);
1889 (symbol
, Fplist_put (XSYMBOL (symbol
)->plist
, propname
, value
));
1893 DEFUN ("lax-plist-get", Flax_plist_get
, Slax_plist_get
, 2, 2, 0,
1894 doc
: /* Extract a value from a property list, comparing with `equal'.
1895 PLIST is a property list, which is a list of the form
1896 \(PROP1 VALUE1 PROP2 VALUE2...). This function returns the value
1897 corresponding to the given PROP, or nil if PROP is not
1898 one of the properties on the list. */)
1899 (Lisp_Object plist
, Lisp_Object prop
)
1904 CONSP (tail
) && CONSP (XCDR (tail
));
1905 tail
= XCDR (XCDR (tail
)))
1907 if (! NILP (Fequal (prop
, XCAR (tail
))))
1908 return XCAR (XCDR (tail
));
1913 CHECK_LIST_END (tail
, prop
);
1918 DEFUN ("lax-plist-put", Flax_plist_put
, Slax_plist_put
, 3, 3, 0,
1919 doc
: /* Change value in PLIST of PROP to VAL, comparing with `equal'.
1920 PLIST is a property list, which is a list of the form
1921 \(PROP1 VALUE1 PROP2 VALUE2 ...). PROP and VAL are any objects.
1922 If PROP is already a property on the list, its value is set to VAL,
1923 otherwise the new PROP VAL pair is added. The new plist is returned;
1924 use `(setq x (lax-plist-put x prop val))' to be sure to use the new value.
1925 The PLIST is modified by side effects. */)
1926 (Lisp_Object plist
, register Lisp_Object prop
, Lisp_Object val
)
1928 register Lisp_Object tail
, prev
;
1929 Lisp_Object newcell
;
1931 for (tail
= plist
; CONSP (tail
) && CONSP (XCDR (tail
));
1932 tail
= XCDR (XCDR (tail
)))
1934 if (! NILP (Fequal (prop
, XCAR (tail
))))
1936 Fsetcar (XCDR (tail
), val
);
1943 newcell
= list2 (prop
, val
);
1947 Fsetcdr (XCDR (prev
), newcell
);
1951 DEFUN ("eql", Feql
, Seql
, 2, 2, 0,
1952 doc
: /* Return t if the two args are the same Lisp object.
1953 Floating-point numbers of equal value are `eql', but they may not be `eq'. */)
1954 (Lisp_Object obj1
, Lisp_Object obj2
)
1957 return internal_equal (obj1
, obj2
, 0, 0, Qnil
) ? Qt
: Qnil
;
1959 return EQ (obj1
, obj2
) ? Qt
: Qnil
;
1962 DEFUN ("equal", Fequal
, Sequal
, 2, 2, 0,
1963 doc
: /* Return t if two Lisp objects have similar structure and contents.
1964 They must have the same data type.
1965 Conses are compared by comparing the cars and the cdrs.
1966 Vectors and strings are compared element by element.
1967 Numbers are compared by value, but integers cannot equal floats.
1968 (Use `=' if you want integers and floats to be able to be equal.)
1969 Symbols must match exactly. */)
1970 (register Lisp_Object o1
, Lisp_Object o2
)
1972 return internal_equal (o1
, o2
, 0, 0, Qnil
) ? Qt
: Qnil
;
1975 DEFUN ("equal-including-properties", Fequal_including_properties
, Sequal_including_properties
, 2, 2, 0,
1976 doc
: /* Return t if two Lisp objects have similar structure and contents.
1977 This is like `equal' except that it compares the text properties
1978 of strings. (`equal' ignores text properties.) */)
1979 (register Lisp_Object o1
, Lisp_Object o2
)
1981 return internal_equal (o1
, o2
, 0, 1, Qnil
) ? Qt
: Qnil
;
1984 /* DEPTH is current depth of recursion. Signal an error if it
1986 PROPS means compare string text properties too. */
1989 internal_equal (Lisp_Object o1
, Lisp_Object o2
, int depth
, bool props
,
1995 error ("Stack overflow in equal");
1998 Lisp_Object args
[2] = { QCtest
, Qeq
};
1999 ht
= Fmake_hash_table (2, args
);
2003 case Lisp_Cons
: case Lisp_Misc
: case Lisp_Vectorlike
:
2005 struct Lisp_Hash_Table
*h
= XHASH_TABLE (ht
);
2007 ptrdiff_t i
= hash_lookup (h
, o1
, &hash
);
2009 { /* `o1' was seen already. */
2010 Lisp_Object o2s
= HASH_VALUE (h
, i
);
2011 if (!NILP (Fmemq (o2
, o2s
)))
2014 set_hash_value_slot (h
, i
, Fcons (o2
, o2s
));
2017 hash_put (h
, o1
, Fcons (o2
, Qnil
), hash
);
2027 if (XTYPE (o1
) != XTYPE (o2
))
2036 d1
= extract_float (o1
);
2037 d2
= extract_float (o2
);
2038 /* If d is a NaN, then d != d. Two NaNs should be `equal' even
2039 though they are not =. */
2040 return d1
== d2
|| (d1
!= d1
&& d2
!= d2
);
2044 if (!internal_equal (XCAR (o1
), XCAR (o2
), depth
+ 1, props
, ht
))
2048 /* FIXME: This inf-loops in a circular list! */
2052 if (XMISCTYPE (o1
) != XMISCTYPE (o2
))
2056 if (!internal_equal (OVERLAY_START (o1
), OVERLAY_START (o2
),
2057 depth
+ 1, props
, ht
)
2058 || !internal_equal (OVERLAY_END (o1
), OVERLAY_END (o2
),
2059 depth
+ 1, props
, ht
))
2061 o1
= XOVERLAY (o1
)->plist
;
2062 o2
= XOVERLAY (o2
)->plist
;
2067 return (XMARKER (o1
)->buffer
== XMARKER (o2
)->buffer
2068 && (XMARKER (o1
)->buffer
== 0
2069 || XMARKER (o1
)->bytepos
== XMARKER (o2
)->bytepos
));
2073 case Lisp_Vectorlike
:
2076 ptrdiff_t size
= ASIZE (o1
);
2077 /* Pseudovectors have the type encoded in the size field, so this test
2078 actually checks that the objects have the same type as well as the
2080 if (ASIZE (o2
) != size
)
2082 /* Boolvectors are compared much like strings. */
2083 if (BOOL_VECTOR_P (o1
))
2085 EMACS_INT size
= bool_vector_size (o1
);
2086 if (size
!= bool_vector_size (o2
))
2088 if (memcmp (bool_vector_data (o1
), bool_vector_data (o2
),
2089 bool_vector_bytes (size
)))
2093 if (WINDOW_CONFIGURATIONP (o1
))
2094 return compare_window_configurations (o1
, o2
, 0);
2096 /* Aside from them, only true vectors, char-tables, compiled
2097 functions, and fonts (font-spec, font-entity, font-object)
2098 are sensible to compare, so eliminate the others now. */
2099 if (size
& PSEUDOVECTOR_FLAG
)
2101 if (((size
& PVEC_TYPE_MASK
) >> PSEUDOVECTOR_AREA_BITS
)
2104 size
&= PSEUDOVECTOR_SIZE_MASK
;
2106 for (i
= 0; i
< size
; i
++)
2111 if (!internal_equal (v1
, v2
, depth
+ 1, props
, ht
))
2119 if (SCHARS (o1
) != SCHARS (o2
))
2121 if (SBYTES (o1
) != SBYTES (o2
))
2123 if (memcmp (SDATA (o1
), SDATA (o2
), SBYTES (o1
)))
2125 if (props
&& !compare_string_intervals (o1
, o2
))
2137 DEFUN ("fillarray", Ffillarray
, Sfillarray
, 2, 2, 0,
2138 doc
: /* Store each element of ARRAY with ITEM.
2139 ARRAY is a vector, string, char-table, or bool-vector. */)
2140 (Lisp_Object array
, Lisp_Object item
)
2142 register ptrdiff_t size
, idx
;
2144 if (VECTORP (array
))
2145 for (idx
= 0, size
= ASIZE (array
); idx
< size
; idx
++)
2146 ASET (array
, idx
, item
);
2147 else if (CHAR_TABLE_P (array
))
2151 for (i
= 0; i
< (1 << CHARTAB_SIZE_BITS_0
); i
++)
2152 set_char_table_contents (array
, i
, item
);
2153 set_char_table_defalt (array
, item
);
2155 else if (STRINGP (array
))
2157 register unsigned char *p
= SDATA (array
);
2159 CHECK_CHARACTER (item
);
2160 charval
= XFASTINT (item
);
2161 size
= SCHARS (array
);
2162 if (STRING_MULTIBYTE (array
))
2164 unsigned char str
[MAX_MULTIBYTE_LENGTH
];
2165 int len
= CHAR_STRING (charval
, str
);
2166 ptrdiff_t size_byte
= SBYTES (array
);
2168 if (INT_MULTIPLY_OVERFLOW (SCHARS (array
), len
)
2169 || SCHARS (array
) * len
!= size_byte
)
2170 error ("Attempt to change byte length of a string");
2171 for (idx
= 0; idx
< size_byte
; idx
++)
2172 *p
++ = str
[idx
% len
];
2175 for (idx
= 0; idx
< size
; idx
++)
2178 else if (BOOL_VECTOR_P (array
))
2179 return bool_vector_fill (array
, item
);
2181 wrong_type_argument (Qarrayp
, array
);
2185 DEFUN ("clear-string", Fclear_string
, Sclear_string
,
2187 doc
: /* Clear the contents of STRING.
2188 This makes STRING unibyte and may change its length. */)
2189 (Lisp_Object string
)
2192 CHECK_STRING (string
);
2193 len
= SBYTES (string
);
2194 memset (SDATA (string
), 0, len
);
2195 STRING_SET_CHARS (string
, len
);
2196 STRING_SET_UNIBYTE (string
);
2202 nconc2 (Lisp_Object s1
, Lisp_Object s2
)
2204 Lisp_Object args
[2];
2207 return Fnconc (2, args
);
2210 DEFUN ("nconc", Fnconc
, Snconc
, 0, MANY
, 0,
2211 doc
: /* Concatenate any number of lists by altering them.
2212 Only the last argument is not altered, and need not be a list.
2213 usage: (nconc &rest LISTS) */)
2214 (ptrdiff_t nargs
, Lisp_Object
*args
)
2217 register Lisp_Object tail
, tem
, val
;
2221 for (argnum
= 0; argnum
< nargs
; argnum
++)
2224 if (NILP (tem
)) continue;
2229 if (argnum
+ 1 == nargs
) break;
2231 CHECK_LIST_CONS (tem
, tem
);
2240 tem
= args
[argnum
+ 1];
2241 Fsetcdr (tail
, tem
);
2243 args
[argnum
+ 1] = tail
;
2249 /* This is the guts of all mapping functions.
2250 Apply FN to each element of SEQ, one by one,
2251 storing the results into elements of VALS, a C vector of Lisp_Objects.
2252 LENI is the length of VALS, which should also be the length of SEQ. */
2255 mapcar1 (EMACS_INT leni
, Lisp_Object
*vals
, Lisp_Object fn
, Lisp_Object seq
)
2257 register Lisp_Object tail
;
2259 register EMACS_INT i
;
2260 struct gcpro gcpro1
, gcpro2
, gcpro3
;
2264 /* Don't let vals contain any garbage when GC happens. */
2265 for (i
= 0; i
< leni
; i
++)
2268 GCPRO3 (dummy
, fn
, seq
);
2270 gcpro1
.nvars
= leni
;
2274 /* We need not explicitly protect `tail' because it is used only on lists, and
2275 1) lists are not relocated and 2) the list is marked via `seq' so will not
2278 if (VECTORP (seq
) || COMPILEDP (seq
))
2280 for (i
= 0; i
< leni
; i
++)
2282 dummy
= call1 (fn
, AREF (seq
, i
));
2287 else if (BOOL_VECTOR_P (seq
))
2289 for (i
= 0; i
< leni
; i
++)
2291 dummy
= call1 (fn
, bool_vector_ref (seq
, i
));
2296 else if (STRINGP (seq
))
2300 for (i
= 0, i_byte
= 0; i
< leni
;)
2303 ptrdiff_t i_before
= i
;
2305 FETCH_STRING_CHAR_ADVANCE (c
, seq
, i
, i_byte
);
2306 XSETFASTINT (dummy
, c
);
2307 dummy
= call1 (fn
, dummy
);
2309 vals
[i_before
] = dummy
;
2312 else /* Must be a list, since Flength did not get an error */
2315 for (i
= 0; i
< leni
&& CONSP (tail
); i
++)
2317 dummy
= call1 (fn
, XCAR (tail
));
2327 DEFUN ("mapconcat", Fmapconcat
, Smapconcat
, 3, 3, 0,
2328 doc
: /* Apply FUNCTION to each element of SEQUENCE, and concat the results as strings.
2329 In between each pair of results, stick in SEPARATOR. Thus, " " as
2330 SEPARATOR results in spaces between the values returned by FUNCTION.
2331 SEQUENCE may be a list, a vector, a bool-vector, or a string. */)
2332 (Lisp_Object function
, Lisp_Object sequence
, Lisp_Object separator
)
2335 register EMACS_INT leni
;
2338 register Lisp_Object
*args
;
2339 struct gcpro gcpro1
;
2343 len
= Flength (sequence
);
2344 if (CHAR_TABLE_P (sequence
))
2345 wrong_type_argument (Qlistp
, sequence
);
2347 nargs
= leni
+ leni
- 1;
2348 if (nargs
< 0) return empty_unibyte_string
;
2350 SAFE_ALLOCA_LISP (args
, nargs
);
2353 mapcar1 (leni
, args
, function
, sequence
);
2356 for (i
= leni
- 1; i
> 0; i
--)
2357 args
[i
+ i
] = args
[i
];
2359 for (i
= 1; i
< nargs
; i
+= 2)
2360 args
[i
] = separator
;
2362 ret
= Fconcat (nargs
, args
);
2368 DEFUN ("mapcar", Fmapcar
, Smapcar
, 2, 2, 0,
2369 doc
: /* Apply FUNCTION to each element of SEQUENCE, and make a list of the results.
2370 The result is a list just as long as SEQUENCE.
2371 SEQUENCE may be a list, a vector, a bool-vector, or a string. */)
2372 (Lisp_Object function
, Lisp_Object sequence
)
2374 register Lisp_Object len
;
2375 register EMACS_INT leni
;
2376 register Lisp_Object
*args
;
2380 len
= Flength (sequence
);
2381 if (CHAR_TABLE_P (sequence
))
2382 wrong_type_argument (Qlistp
, sequence
);
2383 leni
= XFASTINT (len
);
2385 SAFE_ALLOCA_LISP (args
, leni
);
2387 mapcar1 (leni
, args
, function
, sequence
);
2389 ret
= Flist (leni
, args
);
2395 DEFUN ("mapc", Fmapc
, Smapc
, 2, 2, 0,
2396 doc
: /* Apply FUNCTION to each element of SEQUENCE for side effects only.
2397 Unlike `mapcar', don't accumulate the results. Return SEQUENCE.
2398 SEQUENCE may be a list, a vector, a bool-vector, or a string. */)
2399 (Lisp_Object function
, Lisp_Object sequence
)
2401 register EMACS_INT leni
;
2403 leni
= XFASTINT (Flength (sequence
));
2404 if (CHAR_TABLE_P (sequence
))
2405 wrong_type_argument (Qlistp
, sequence
);
2406 mapcar1 (leni
, 0, function
, sequence
);
2411 /* This is how C code calls `yes-or-no-p' and allows the user
2414 Anything that calls this function must protect from GC! */
2417 do_yes_or_no_p (Lisp_Object prompt
)
2419 return call1 (intern ("yes-or-no-p"), prompt
);
2422 /* Anything that calls this function must protect from GC! */
2424 DEFUN ("yes-or-no-p", Fyes_or_no_p
, Syes_or_no_p
, 1, 1, 0,
2425 doc
: /* Ask user a yes-or-no question. Return t if answer is yes.
2426 PROMPT is the string to display to ask the question. It should end in
2427 a space; `yes-or-no-p' adds \"(yes or no) \" to it.
2429 The user must confirm the answer with RET, and can edit it until it
2432 If dialog boxes are supported, a dialog box will be used
2433 if `last-nonmenu-event' is nil, and `use-dialog-box' is non-nil. */)
2434 (Lisp_Object prompt
)
2436 register Lisp_Object ans
;
2437 Lisp_Object args
[2];
2438 struct gcpro gcpro1
;
2440 CHECK_STRING (prompt
);
2442 if ((NILP (last_nonmenu_event
) || CONSP (last_nonmenu_event
))
2445 Lisp_Object pane
, menu
, obj
;
2446 redisplay_preserve_echo_area (4);
2447 pane
= list2 (Fcons (build_string ("Yes"), Qt
),
2448 Fcons (build_string ("No"), Qnil
));
2450 menu
= Fcons (prompt
, pane
);
2451 obj
= Fx_popup_dialog (Qt
, menu
, Qnil
);
2457 args
[1] = build_string ("(yes or no) ");
2458 prompt
= Fconcat (2, args
);
2464 ans
= Fdowncase (Fread_from_minibuffer (prompt
, Qnil
, Qnil
, Qnil
,
2465 Qyes_or_no_p_history
, Qnil
,
2467 if (SCHARS (ans
) == 3 && !strcmp (SSDATA (ans
), "yes"))
2472 if (SCHARS (ans
) == 2 && !strcmp (SSDATA (ans
), "no"))
2480 message1 ("Please answer yes or no.");
2481 Fsleep_for (make_number (2), Qnil
);
2485 DEFUN ("load-average", Fload_average
, Sload_average
, 0, 1, 0,
2486 doc
: /* Return list of 1 minute, 5 minute and 15 minute load averages.
2488 Each of the three load averages is multiplied by 100, then converted
2491 When USE-FLOATS is non-nil, floats will be used instead of integers.
2492 These floats are not multiplied by 100.
2494 If the 5-minute or 15-minute load averages are not available, return a
2495 shortened list, containing only those averages which are available.
2497 An error is thrown if the load average can't be obtained. In some
2498 cases making it work would require Emacs being installed setuid or
2499 setgid so that it can read kernel information, and that usually isn't
2501 (Lisp_Object use_floats
)
2504 int loads
= getloadavg (load_ave
, 3);
2505 Lisp_Object ret
= Qnil
;
2508 error ("load-average not implemented for this operating system");
2512 Lisp_Object load
= (NILP (use_floats
)
2513 ? make_number (100.0 * load_ave
[loads
])
2514 : make_float (load_ave
[loads
]));
2515 ret
= Fcons (load
, ret
);
2521 static Lisp_Object Qsubfeatures
;
2523 DEFUN ("featurep", Ffeaturep
, Sfeaturep
, 1, 2, 0,
2524 doc
: /* Return t if FEATURE is present in this Emacs.
2526 Use this to conditionalize execution of lisp code based on the
2527 presence or absence of Emacs or environment extensions.
2528 Use `provide' to declare that a feature is available. This function
2529 looks at the value of the variable `features'. The optional argument
2530 SUBFEATURE can be used to check a specific subfeature of FEATURE. */)
2531 (Lisp_Object feature
, Lisp_Object subfeature
)
2533 register Lisp_Object tem
;
2534 CHECK_SYMBOL (feature
);
2535 tem
= Fmemq (feature
, Vfeatures
);
2536 if (!NILP (tem
) && !NILP (subfeature
))
2537 tem
= Fmember (subfeature
, Fget (feature
, Qsubfeatures
));
2538 return (NILP (tem
)) ? Qnil
: Qt
;
2541 static Lisp_Object Qfuncall
;
2543 DEFUN ("provide", Fprovide
, Sprovide
, 1, 2, 0,
2544 doc
: /* Announce that FEATURE is a feature of the current Emacs.
2545 The optional argument SUBFEATURES should be a list of symbols listing
2546 particular subfeatures supported in this version of FEATURE. */)
2547 (Lisp_Object feature
, Lisp_Object subfeatures
)
2549 register Lisp_Object tem
;
2550 CHECK_SYMBOL (feature
);
2551 CHECK_LIST (subfeatures
);
2552 if (!NILP (Vautoload_queue
))
2553 Vautoload_queue
= Fcons (Fcons (make_number (0), Vfeatures
),
2555 tem
= Fmemq (feature
, Vfeatures
);
2557 Vfeatures
= Fcons (feature
, Vfeatures
);
2558 if (!NILP (subfeatures
))
2559 Fput (feature
, Qsubfeatures
, subfeatures
);
2560 LOADHIST_ATTACH (Fcons (Qprovide
, feature
));
2562 /* Run any load-hooks for this file. */
2563 tem
= Fassq (feature
, Vafter_load_alist
);
2565 Fmapc (Qfuncall
, XCDR (tem
));
2570 /* `require' and its subroutines. */
2572 /* List of features currently being require'd, innermost first. */
2574 static Lisp_Object require_nesting_list
;
2577 require_unwind (Lisp_Object old_value
)
2579 require_nesting_list
= old_value
;
2582 DEFUN ("require", Frequire
, Srequire
, 1, 3, 0,
2583 doc
: /* If feature FEATURE is not loaded, load it from FILENAME.
2584 If FEATURE is not a member of the list `features', then the feature
2585 is not loaded; so load the file FILENAME.
2586 If FILENAME is omitted, the printname of FEATURE is used as the file name,
2587 and `load' will try to load this name appended with the suffix `.elc' or
2588 `.el', in that order. The name without appended suffix will not be used.
2589 See `get-load-suffixes' for the complete list of suffixes.
2590 If the optional third argument NOERROR is non-nil,
2591 then return nil if the file is not found instead of signaling an error.
2592 Normally the return value is FEATURE.
2593 The normal messages at start and end of loading FILENAME are suppressed. */)
2594 (Lisp_Object feature
, Lisp_Object filename
, Lisp_Object noerror
)
2597 struct gcpro gcpro1
, gcpro2
;
2598 bool from_file
= load_in_progress
;
2600 CHECK_SYMBOL (feature
);
2602 /* Record the presence of `require' in this file
2603 even if the feature specified is already loaded.
2604 But not more than once in any file,
2605 and not when we aren't loading or reading from a file. */
2607 for (tem
= Vcurrent_load_list
; CONSP (tem
); tem
= XCDR (tem
))
2608 if (NILP (XCDR (tem
)) && STRINGP (XCAR (tem
)))
2613 tem
= Fcons (Qrequire
, feature
);
2614 if (NILP (Fmember (tem
, Vcurrent_load_list
)))
2615 LOADHIST_ATTACH (tem
);
2617 tem
= Fmemq (feature
, Vfeatures
);
2621 ptrdiff_t count
= SPECPDL_INDEX ();
2624 /* This is to make sure that loadup.el gives a clear picture
2625 of what files are preloaded and when. */
2626 if (! NILP (Vpurify_flag
))
2627 error ("(require %s) while preparing to dump",
2628 SDATA (SYMBOL_NAME (feature
)));
2630 /* A certain amount of recursive `require' is legitimate,
2631 but if we require the same feature recursively 3 times,
2633 tem
= require_nesting_list
;
2634 while (! NILP (tem
))
2636 if (! NILP (Fequal (feature
, XCAR (tem
))))
2641 error ("Recursive `require' for feature `%s'",
2642 SDATA (SYMBOL_NAME (feature
)));
2644 /* Update the list for any nested `require's that occur. */
2645 record_unwind_protect (require_unwind
, require_nesting_list
);
2646 require_nesting_list
= Fcons (feature
, require_nesting_list
);
2648 /* Value saved here is to be restored into Vautoload_queue */
2649 record_unwind_protect (un_autoload
, Vautoload_queue
);
2650 Vautoload_queue
= Qt
;
2652 /* Load the file. */
2653 GCPRO2 (feature
, filename
);
2654 tem
= Fload (NILP (filename
) ? Fsymbol_name (feature
) : filename
,
2655 noerror
, Qt
, Qnil
, (NILP (filename
) ? Qt
: Qnil
));
2658 /* If load failed entirely, return nil. */
2660 return unbind_to (count
, Qnil
);
2662 tem
= Fmemq (feature
, Vfeatures
);
2664 error ("Required feature `%s' was not provided",
2665 SDATA (SYMBOL_NAME (feature
)));
2667 /* Once loading finishes, don't undo it. */
2668 Vautoload_queue
= Qt
;
2669 feature
= unbind_to (count
, feature
);
2675 /* Primitives for work of the "widget" library.
2676 In an ideal world, this section would not have been necessary.
2677 However, lisp function calls being as slow as they are, it turns
2678 out that some functions in the widget library (wid-edit.el) are the
2679 bottleneck of Widget operation. Here is their translation to C,
2680 for the sole reason of efficiency. */
2682 DEFUN ("plist-member", Fplist_member
, Splist_member
, 2, 2, 0,
2683 doc
: /* Return non-nil if PLIST has the property PROP.
2684 PLIST is a property list, which is a list of the form
2685 \(PROP1 VALUE1 PROP2 VALUE2 ...\). PROP is a symbol.
2686 Unlike `plist-get', this allows you to distinguish between a missing
2687 property and a property with the value nil.
2688 The value is actually the tail of PLIST whose car is PROP. */)
2689 (Lisp_Object plist
, Lisp_Object prop
)
2691 while (CONSP (plist
) && !EQ (XCAR (plist
), prop
))
2694 plist
= XCDR (plist
);
2695 plist
= CDR (plist
);
2700 DEFUN ("widget-put", Fwidget_put
, Swidget_put
, 3, 3, 0,
2701 doc
: /* In WIDGET, set PROPERTY to VALUE.
2702 The value can later be retrieved with `widget-get'. */)
2703 (Lisp_Object widget
, Lisp_Object property
, Lisp_Object value
)
2705 CHECK_CONS (widget
);
2706 XSETCDR (widget
, Fplist_put (XCDR (widget
), property
, value
));
2710 DEFUN ("widget-get", Fwidget_get
, Swidget_get
, 2, 2, 0,
2711 doc
: /* In WIDGET, get the value of PROPERTY.
2712 The value could either be specified when the widget was created, or
2713 later with `widget-put'. */)
2714 (Lisp_Object widget
, Lisp_Object property
)
2722 CHECK_CONS (widget
);
2723 tmp
= Fplist_member (XCDR (widget
), property
);
2729 tmp
= XCAR (widget
);
2732 widget
= Fget (tmp
, Qwidget_type
);
2736 DEFUN ("widget-apply", Fwidget_apply
, Swidget_apply
, 2, MANY
, 0,
2737 doc
: /* Apply the value of WIDGET's PROPERTY to the widget itself.
2738 ARGS are passed as extra arguments to the function.
2739 usage: (widget-apply WIDGET PROPERTY &rest ARGS) */)
2740 (ptrdiff_t nargs
, Lisp_Object
*args
)
2742 /* This function can GC. */
2743 Lisp_Object newargs
[3];
2744 struct gcpro gcpro1
, gcpro2
;
2747 newargs
[0] = Fwidget_get (args
[0], args
[1]);
2748 newargs
[1] = args
[0];
2749 newargs
[2] = Flist (nargs
- 2, args
+ 2);
2750 GCPRO2 (newargs
[0], newargs
[2]);
2751 result
= Fapply (3, newargs
);
2756 #ifdef HAVE_LANGINFO_CODESET
2757 #include <langinfo.h>
2760 DEFUN ("locale-info", Flocale_info
, Slocale_info
, 1, 1, 0,
2761 doc
: /* Access locale data ITEM for the current C locale, if available.
2762 ITEM should be one of the following:
2764 `codeset', returning the character set as a string (locale item CODESET);
2766 `days', returning a 7-element vector of day names (locale items DAY_n);
2768 `months', returning a 12-element vector of month names (locale items MON_n);
2770 `paper', returning a list (WIDTH HEIGHT) for the default paper size,
2771 both measured in millimeters (locale items PAPER_WIDTH, PAPER_HEIGHT).
2773 If the system can't provide such information through a call to
2774 `nl_langinfo', or if ITEM isn't from the list above, return nil.
2776 See also Info node `(libc)Locales'.
2778 The data read from the system are decoded using `locale-coding-system'. */)
2782 #ifdef HAVE_LANGINFO_CODESET
2784 if (EQ (item
, Qcodeset
))
2786 str
= nl_langinfo (CODESET
);
2787 return build_string (str
);
2790 else if (EQ (item
, Qdays
)) /* e.g. for calendar-day-name-array */
2792 Lisp_Object v
= Fmake_vector (make_number (7), Qnil
);
2793 const int days
[7] = {DAY_1
, DAY_2
, DAY_3
, DAY_4
, DAY_5
, DAY_6
, DAY_7
};
2795 struct gcpro gcpro1
;
2797 synchronize_system_time_locale ();
2798 for (i
= 0; i
< 7; i
++)
2800 str
= nl_langinfo (days
[i
]);
2801 val
= build_unibyte_string (str
);
2802 /* Fixme: Is this coding system necessarily right, even if
2803 it is consistent with CODESET? If not, what to do? */
2804 ASET (v
, i
, code_convert_string_norecord (val
, Vlocale_coding_system
,
2812 else if (EQ (item
, Qmonths
)) /* e.g. for calendar-month-name-array */
2814 Lisp_Object v
= Fmake_vector (make_number (12), Qnil
);
2815 const int months
[12] = {MON_1
, MON_2
, MON_3
, MON_4
, MON_5
, MON_6
, MON_7
,
2816 MON_8
, MON_9
, MON_10
, MON_11
, MON_12
};
2818 struct gcpro gcpro1
;
2820 synchronize_system_time_locale ();
2821 for (i
= 0; i
< 12; i
++)
2823 str
= nl_langinfo (months
[i
]);
2824 val
= build_unibyte_string (str
);
2825 ASET (v
, i
, code_convert_string_norecord (val
, Vlocale_coding_system
,
2832 /* LC_PAPER stuff isn't defined as accessible in glibc as of 2.3.1,
2833 but is in the locale files. This could be used by ps-print. */
2835 else if (EQ (item
, Qpaper
))
2836 return list2i (nl_langinfo (PAPER_WIDTH
), nl_langinfo (PAPER_HEIGHT
));
2837 #endif /* PAPER_WIDTH */
2838 #endif /* HAVE_LANGINFO_CODESET*/
2842 /* base64 encode/decode functions (RFC 2045).
2843 Based on code from GNU recode. */
2845 #define MIME_LINE_LENGTH 76
2847 #define IS_ASCII(Character) \
2849 #define IS_BASE64(Character) \
2850 (IS_ASCII (Character) && base64_char_to_value[Character] >= 0)
2851 #define IS_BASE64_IGNORABLE(Character) \
2852 ((Character) == ' ' || (Character) == '\t' || (Character) == '\n' \
2853 || (Character) == '\f' || (Character) == '\r')
2855 /* Used by base64_decode_1 to retrieve a non-base64-ignorable
2856 character or return retval if there are no characters left to
2858 #define READ_QUADRUPLET_BYTE(retval) \
2863 if (nchars_return) \
2864 *nchars_return = nchars; \
2869 while (IS_BASE64_IGNORABLE (c))
2871 /* Table of characters coding the 64 values. */
2872 static const char base64_value_to_char
[64] =
2874 'A', 'B', 'C', 'D', 'E', 'F', 'G', 'H', 'I', 'J', /* 0- 9 */
2875 'K', 'L', 'M', 'N', 'O', 'P', 'Q', 'R', 'S', 'T', /* 10-19 */
2876 'U', 'V', 'W', 'X', 'Y', 'Z', 'a', 'b', 'c', 'd', /* 20-29 */
2877 'e', 'f', 'g', 'h', 'i', 'j', 'k', 'l', 'm', 'n', /* 30-39 */
2878 'o', 'p', 'q', 'r', 's', 't', 'u', 'v', 'w', 'x', /* 40-49 */
2879 'y', 'z', '0', '1', '2', '3', '4', '5', '6', '7', /* 50-59 */
2880 '8', '9', '+', '/' /* 60-63 */
2883 /* Table of base64 values for first 128 characters. */
2884 static const short base64_char_to_value
[128] =
2886 -1, -1, -1, -1, -1, -1, -1, -1, -1, -1, /* 0- 9 */
2887 -1, -1, -1, -1, -1, -1, -1, -1, -1, -1, /* 10- 19 */
2888 -1, -1, -1, -1, -1, -1, -1, -1, -1, -1, /* 20- 29 */
2889 -1, -1, -1, -1, -1, -1, -1, -1, -1, -1, /* 30- 39 */
2890 -1, -1, -1, 62, -1, -1, -1, 63, 52, 53, /* 40- 49 */
2891 54, 55, 56, 57, 58, 59, 60, 61, -1, -1, /* 50- 59 */
2892 -1, -1, -1, -1, -1, 0, 1, 2, 3, 4, /* 60- 69 */
2893 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, /* 70- 79 */
2894 15, 16, 17, 18, 19, 20, 21, 22, 23, 24, /* 80- 89 */
2895 25, -1, -1, -1, -1, -1, -1, 26, 27, 28, /* 90- 99 */
2896 29, 30, 31, 32, 33, 34, 35, 36, 37, 38, /* 100-109 */
2897 39, 40, 41, 42, 43, 44, 45, 46, 47, 48, /* 110-119 */
2898 49, 50, 51, -1, -1, -1, -1, -1 /* 120-127 */
2901 /* The following diagram shows the logical steps by which three octets
2902 get transformed into four base64 characters.
2904 .--------. .--------. .--------.
2905 |aaaaaabb| |bbbbcccc| |ccdddddd|
2906 `--------' `--------' `--------'
2908 .--------+--------+--------+--------.
2909 |00aaaaaa|00bbbbbb|00cccccc|00dddddd|
2910 `--------+--------+--------+--------'
2912 .--------+--------+--------+--------.
2913 |AAAAAAAA|BBBBBBBB|CCCCCCCC|DDDDDDDD|
2914 `--------+--------+--------+--------'
2916 The octets are divided into 6 bit chunks, which are then encoded into
2917 base64 characters. */
2920 static ptrdiff_t base64_encode_1 (const char *, char *, ptrdiff_t, bool, bool);
2921 static ptrdiff_t base64_decode_1 (const char *, char *, ptrdiff_t, bool,
2924 DEFUN ("base64-encode-region", Fbase64_encode_region
, Sbase64_encode_region
,
2926 doc
: /* Base64-encode the region between BEG and END.
2927 Return the length of the encoded text.
2928 Optional third argument NO-LINE-BREAK means do not break long lines
2929 into shorter lines. */)
2930 (Lisp_Object beg
, Lisp_Object end
, Lisp_Object no_line_break
)
2933 ptrdiff_t allength
, length
;
2934 ptrdiff_t ibeg
, iend
, encoded_length
;
2935 ptrdiff_t old_pos
= PT
;
2938 validate_region (&beg
, &end
);
2940 ibeg
= CHAR_TO_BYTE (XFASTINT (beg
));
2941 iend
= CHAR_TO_BYTE (XFASTINT (end
));
2942 move_gap_both (XFASTINT (beg
), ibeg
);
2944 /* We need to allocate enough room for encoding the text.
2945 We need 33 1/3% more space, plus a newline every 76
2946 characters, and then we round up. */
2947 length
= iend
- ibeg
;
2948 allength
= length
+ length
/3 + 1;
2949 allength
+= allength
/ MIME_LINE_LENGTH
+ 1 + 6;
2951 encoded
= SAFE_ALLOCA (allength
);
2952 encoded_length
= base64_encode_1 ((char *) BYTE_POS_ADDR (ibeg
),
2953 encoded
, length
, NILP (no_line_break
),
2954 !NILP (BVAR (current_buffer
, enable_multibyte_characters
)));
2955 if (encoded_length
> allength
)
2958 if (encoded_length
< 0)
2960 /* The encoding wasn't possible. */
2962 error ("Multibyte character in data for base64 encoding");
2965 /* Now we have encoded the region, so we insert the new contents
2966 and delete the old. (Insert first in order to preserve markers.) */
2967 SET_PT_BOTH (XFASTINT (beg
), ibeg
);
2968 insert (encoded
, encoded_length
);
2970 del_range_byte (ibeg
+ encoded_length
, iend
+ encoded_length
, 1);
2972 /* If point was outside of the region, restore it exactly; else just
2973 move to the beginning of the region. */
2974 if (old_pos
>= XFASTINT (end
))
2975 old_pos
+= encoded_length
- (XFASTINT (end
) - XFASTINT (beg
));
2976 else if (old_pos
> XFASTINT (beg
))
2977 old_pos
= XFASTINT (beg
);
2980 /* We return the length of the encoded text. */
2981 return make_number (encoded_length
);
2984 DEFUN ("base64-encode-string", Fbase64_encode_string
, Sbase64_encode_string
,
2986 doc
: /* Base64-encode STRING and return the result.
2987 Optional second argument NO-LINE-BREAK means do not break long lines
2988 into shorter lines. */)
2989 (Lisp_Object string
, Lisp_Object no_line_break
)
2991 ptrdiff_t allength
, length
, encoded_length
;
2993 Lisp_Object encoded_string
;
2996 CHECK_STRING (string
);
2998 /* We need to allocate enough room for encoding the text.
2999 We need 33 1/3% more space, plus a newline every 76
3000 characters, and then we round up. */
3001 length
= SBYTES (string
);
3002 allength
= length
+ length
/3 + 1;
3003 allength
+= allength
/ MIME_LINE_LENGTH
+ 1 + 6;
3005 /* We need to allocate enough room for decoding the text. */
3006 encoded
= SAFE_ALLOCA (allength
);
3008 encoded_length
= base64_encode_1 (SSDATA (string
),
3009 encoded
, length
, NILP (no_line_break
),
3010 STRING_MULTIBYTE (string
));
3011 if (encoded_length
> allength
)
3014 if (encoded_length
< 0)
3016 /* The encoding wasn't possible. */
3018 error ("Multibyte character in data for base64 encoding");
3021 encoded_string
= make_unibyte_string (encoded
, encoded_length
);
3024 return encoded_string
;
3028 base64_encode_1 (const char *from
, char *to
, ptrdiff_t length
,
3029 bool line_break
, bool multibyte
)
3042 c
= STRING_CHAR_AND_LENGTH ((unsigned char *) from
+ i
, bytes
);
3043 if (CHAR_BYTE8_P (c
))
3044 c
= CHAR_TO_BYTE8 (c
);
3052 /* Wrap line every 76 characters. */
3056 if (counter
< MIME_LINE_LENGTH
/ 4)
3065 /* Process first byte of a triplet. */
3067 *e
++ = base64_value_to_char
[0x3f & c
>> 2];
3068 value
= (0x03 & c
) << 4;
3070 /* Process second byte of a triplet. */
3074 *e
++ = base64_value_to_char
[value
];
3082 c
= STRING_CHAR_AND_LENGTH ((unsigned char *) from
+ i
, bytes
);
3083 if (CHAR_BYTE8_P (c
))
3084 c
= CHAR_TO_BYTE8 (c
);
3092 *e
++ = base64_value_to_char
[value
| (0x0f & c
>> 4)];
3093 value
= (0x0f & c
) << 2;
3095 /* Process third byte of a triplet. */
3099 *e
++ = base64_value_to_char
[value
];
3106 c
= STRING_CHAR_AND_LENGTH ((unsigned char *) from
+ i
, bytes
);
3107 if (CHAR_BYTE8_P (c
))
3108 c
= CHAR_TO_BYTE8 (c
);
3116 *e
++ = base64_value_to_char
[value
| (0x03 & c
>> 6)];
3117 *e
++ = base64_value_to_char
[0x3f & c
];
3124 DEFUN ("base64-decode-region", Fbase64_decode_region
, Sbase64_decode_region
,
3126 doc
: /* Base64-decode the region between BEG and END.
3127 Return the length of the decoded text.
3128 If the region can't be decoded, signal an error and don't modify the buffer. */)
3129 (Lisp_Object beg
, Lisp_Object end
)
3131 ptrdiff_t ibeg
, iend
, length
, allength
;
3133 ptrdiff_t old_pos
= PT
;
3134 ptrdiff_t decoded_length
;
3135 ptrdiff_t inserted_chars
;
3136 bool multibyte
= !NILP (BVAR (current_buffer
, enable_multibyte_characters
));
3139 validate_region (&beg
, &end
);
3141 ibeg
= CHAR_TO_BYTE (XFASTINT (beg
));
3142 iend
= CHAR_TO_BYTE (XFASTINT (end
));
3144 length
= iend
- ibeg
;
3146 /* We need to allocate enough room for decoding the text. If we are
3147 working on a multibyte buffer, each decoded code may occupy at
3149 allength
= multibyte
? length
* 2 : length
;
3150 decoded
= SAFE_ALLOCA (allength
);
3152 move_gap_both (XFASTINT (beg
), ibeg
);
3153 decoded_length
= base64_decode_1 ((char *) BYTE_POS_ADDR (ibeg
),
3155 multibyte
, &inserted_chars
);
3156 if (decoded_length
> allength
)
3159 if (decoded_length
< 0)
3161 /* The decoding wasn't possible. */
3163 error ("Invalid base64 data");
3166 /* Now we have decoded the region, so we insert the new contents
3167 and delete the old. (Insert first in order to preserve markers.) */
3168 TEMP_SET_PT_BOTH (XFASTINT (beg
), ibeg
);
3169 insert_1_both (decoded
, inserted_chars
, decoded_length
, 0, 1, 0);
3172 /* Delete the original text. */
3173 del_range_both (PT
, PT_BYTE
, XFASTINT (end
) + inserted_chars
,
3174 iend
+ decoded_length
, 1);
3176 /* If point was outside of the region, restore it exactly; else just
3177 move to the beginning of the region. */
3178 if (old_pos
>= XFASTINT (end
))
3179 old_pos
+= inserted_chars
- (XFASTINT (end
) - XFASTINT (beg
));
3180 else if (old_pos
> XFASTINT (beg
))
3181 old_pos
= XFASTINT (beg
);
3182 SET_PT (old_pos
> ZV
? ZV
: old_pos
);
3184 return make_number (inserted_chars
);
3187 DEFUN ("base64-decode-string", Fbase64_decode_string
, Sbase64_decode_string
,
3189 doc
: /* Base64-decode STRING and return the result. */)
3190 (Lisp_Object string
)
3193 ptrdiff_t length
, decoded_length
;
3194 Lisp_Object decoded_string
;
3197 CHECK_STRING (string
);
3199 length
= SBYTES (string
);
3200 /* We need to allocate enough room for decoding the text. */
3201 decoded
= SAFE_ALLOCA (length
);
3203 /* The decoded result should be unibyte. */
3204 decoded_length
= base64_decode_1 (SSDATA (string
), decoded
, length
,
3206 if (decoded_length
> length
)
3208 else if (decoded_length
>= 0)
3209 decoded_string
= make_unibyte_string (decoded
, decoded_length
);
3211 decoded_string
= Qnil
;
3214 if (!STRINGP (decoded_string
))
3215 error ("Invalid base64 data");
3217 return decoded_string
;
3220 /* Base64-decode the data at FROM of LENGTH bytes into TO. If
3221 MULTIBYTE, the decoded result should be in multibyte
3222 form. If NCHARS_RETURN is not NULL, store the number of produced
3223 characters in *NCHARS_RETURN. */
3226 base64_decode_1 (const char *from
, char *to
, ptrdiff_t length
,
3227 bool multibyte
, ptrdiff_t *nchars_return
)
3229 ptrdiff_t i
= 0; /* Used inside READ_QUADRUPLET_BYTE */
3232 unsigned long value
;
3233 ptrdiff_t nchars
= 0;
3237 /* Process first byte of a quadruplet. */
3239 READ_QUADRUPLET_BYTE (e
-to
);
3243 value
= base64_char_to_value
[c
] << 18;
3245 /* Process second byte of a quadruplet. */
3247 READ_QUADRUPLET_BYTE (-1);
3251 value
|= base64_char_to_value
[c
] << 12;
3253 c
= (unsigned char) (value
>> 16);
3254 if (multibyte
&& c
>= 128)
3255 e
+= BYTE8_STRING (c
, e
);
3260 /* Process third byte of a quadruplet. */
3262 READ_QUADRUPLET_BYTE (-1);
3266 READ_QUADRUPLET_BYTE (-1);
3275 value
|= base64_char_to_value
[c
] << 6;
3277 c
= (unsigned char) (0xff & value
>> 8);
3278 if (multibyte
&& c
>= 128)
3279 e
+= BYTE8_STRING (c
, e
);
3284 /* Process fourth byte of a quadruplet. */
3286 READ_QUADRUPLET_BYTE (-1);
3293 value
|= base64_char_to_value
[c
];
3295 c
= (unsigned char) (0xff & value
);
3296 if (multibyte
&& c
>= 128)
3297 e
+= BYTE8_STRING (c
, e
);
3306 /***********************************************************************
3308 ***** Hash Tables *****
3310 ***********************************************************************/
3312 /* Implemented by gerd@gnu.org. This hash table implementation was
3313 inspired by CMUCL hash tables. */
3317 1. For small tables, association lists are probably faster than
3318 hash tables because they have lower overhead.
3320 For uses of hash tables where the O(1) behavior of table
3321 operations is not a requirement, it might therefore be a good idea
3322 not to hash. Instead, we could just do a linear search in the
3323 key_and_value vector of the hash table. This could be done
3324 if a `:linear-search t' argument is given to make-hash-table. */
3327 /* The list of all weak hash tables. Don't staticpro this one. */
3329 static struct Lisp_Hash_Table
*weak_hash_tables
;
3331 /* Various symbols. */
3333 static Lisp_Object Qhash_table_p
;
3334 static Lisp_Object Qkey
, Qvalue
, Qeql
;
3335 Lisp_Object Qeq
, Qequal
;
3336 Lisp_Object QCtest
, QCsize
, QCrehash_size
, QCrehash_threshold
, QCweakness
;
3337 static Lisp_Object Qhash_table_test
, Qkey_or_value
, Qkey_and_value
;
3340 /***********************************************************************
3342 ***********************************************************************/
3345 CHECK_HASH_TABLE (Lisp_Object x
)
3347 CHECK_TYPE (HASH_TABLE_P (x
), Qhash_table_p
, x
);
3351 set_hash_key_and_value (struct Lisp_Hash_Table
*h
, Lisp_Object key_and_value
)
3353 h
->key_and_value
= key_and_value
;
3356 set_hash_next (struct Lisp_Hash_Table
*h
, Lisp_Object next
)
3361 set_hash_next_slot (struct Lisp_Hash_Table
*h
, ptrdiff_t idx
, Lisp_Object val
)
3363 gc_aset (h
->next
, idx
, val
);
3366 set_hash_hash (struct Lisp_Hash_Table
*h
, Lisp_Object hash
)
3371 set_hash_hash_slot (struct Lisp_Hash_Table
*h
, ptrdiff_t idx
, Lisp_Object val
)
3373 gc_aset (h
->hash
, idx
, val
);
3376 set_hash_index (struct Lisp_Hash_Table
*h
, Lisp_Object index
)
3381 set_hash_index_slot (struct Lisp_Hash_Table
*h
, ptrdiff_t idx
, Lisp_Object val
)
3383 gc_aset (h
->index
, idx
, val
);
3386 /* If OBJ is a Lisp hash table, return a pointer to its struct
3387 Lisp_Hash_Table. Otherwise, signal an error. */
3389 static struct Lisp_Hash_Table
*
3390 check_hash_table (Lisp_Object obj
)
3392 CHECK_HASH_TABLE (obj
);
3393 return XHASH_TABLE (obj
);
3397 /* Value is the next integer I >= N, N >= 0 which is "almost" a prime
3398 number. A number is "almost" a prime number if it is not divisible
3399 by any integer in the range 2 .. (NEXT_ALMOST_PRIME_LIMIT - 1). */
3402 next_almost_prime (EMACS_INT n
)
3404 verify (NEXT_ALMOST_PRIME_LIMIT
== 11);
3405 for (n
|= 1; ; n
+= 2)
3406 if (n
% 3 != 0 && n
% 5 != 0 && n
% 7 != 0)
3411 /* Find KEY in ARGS which has size NARGS. Don't consider indices for
3412 which USED[I] is non-zero. If found at index I in ARGS, set
3413 USED[I] and USED[I + 1] to 1, and return I + 1. Otherwise return
3414 0. This function is used to extract a keyword/argument pair from
3415 a DEFUN parameter list. */
3418 get_key_arg (Lisp_Object key
, ptrdiff_t nargs
, Lisp_Object
*args
, char *used
)
3422 for (i
= 1; i
< nargs
; i
++)
3423 if (!used
[i
- 1] && EQ (args
[i
- 1], key
))
3434 /* Return a Lisp vector which has the same contents as VEC but has
3435 at least INCR_MIN more entries, where INCR_MIN is positive.
3436 If NITEMS_MAX is not -1, do not grow the vector to be any larger
3437 than NITEMS_MAX. Entries in the resulting
3438 vector that are not copied from VEC are set to nil. */
3441 larger_vector (Lisp_Object vec
, ptrdiff_t incr_min
, ptrdiff_t nitems_max
)
3443 struct Lisp_Vector
*v
;
3444 ptrdiff_t i
, incr
, incr_max
, old_size
, new_size
;
3445 ptrdiff_t C_language_max
= min (PTRDIFF_MAX
, SIZE_MAX
) / sizeof *v
->contents
;
3446 ptrdiff_t n_max
= (0 <= nitems_max
&& nitems_max
< C_language_max
3447 ? nitems_max
: C_language_max
);
3448 eassert (VECTORP (vec
));
3449 eassert (0 < incr_min
&& -1 <= nitems_max
);
3450 old_size
= ASIZE (vec
);
3451 incr_max
= n_max
- old_size
;
3452 incr
= max (incr_min
, min (old_size
>> 1, incr_max
));
3453 if (incr_max
< incr
)
3454 memory_full (SIZE_MAX
);
3455 new_size
= old_size
+ incr
;
3456 v
= allocate_vector (new_size
);
3457 memcpy (v
->contents
, XVECTOR (vec
)->contents
, old_size
* sizeof *v
->contents
);
3458 for (i
= old_size
; i
< new_size
; ++i
)
3459 v
->contents
[i
] = Qnil
;
3460 XSETVECTOR (vec
, v
);
3465 /***********************************************************************
3467 ***********************************************************************/
3469 static struct hash_table_test hashtest_eq
;
3470 struct hash_table_test hashtest_eql
, hashtest_equal
;
3472 /* Compare KEY1 which has hash code HASH1 and KEY2 with hash code
3473 HASH2 in hash table H using `eql'. Value is true if KEY1 and
3474 KEY2 are the same. */
3477 cmpfn_eql (struct hash_table_test
*ht
,
3481 return (FLOATP (key1
)
3483 && XFLOAT_DATA (key1
) == XFLOAT_DATA (key2
));
3487 /* Compare KEY1 which has hash code HASH1 and KEY2 with hash code
3488 HASH2 in hash table H using `equal'. Value is true if KEY1 and
3489 KEY2 are the same. */
3492 cmpfn_equal (struct hash_table_test
*ht
,
3496 return !NILP (Fequal (key1
, key2
));
3500 /* Compare KEY1 which has hash code HASH1, and KEY2 with hash code
3501 HASH2 in hash table H using H->user_cmp_function. Value is true
3502 if KEY1 and KEY2 are the same. */
3505 cmpfn_user_defined (struct hash_table_test
*ht
,
3509 Lisp_Object args
[3];
3511 args
[0] = ht
->user_cmp_function
;
3514 return !NILP (Ffuncall (3, args
));
3518 /* Value is a hash code for KEY for use in hash table H which uses
3519 `eq' to compare keys. The hash code returned is guaranteed to fit
3520 in a Lisp integer. */
3523 hashfn_eq (struct hash_table_test
*ht
, Lisp_Object key
)
3525 EMACS_UINT hash
= XHASH (key
) ^ XTYPE (key
);
3529 /* Value is a hash code for KEY for use in hash table H which uses
3530 `eql' to compare keys. The hash code returned is guaranteed to fit
3531 in a Lisp integer. */
3534 hashfn_eql (struct hash_table_test
*ht
, Lisp_Object key
)
3538 hash
= sxhash (key
, 0);
3540 hash
= XHASH (key
) ^ XTYPE (key
);
3544 /* Value is a hash code for KEY for use in hash table H which uses
3545 `equal' to compare keys. The hash code returned is guaranteed to fit
3546 in a Lisp integer. */
3549 hashfn_equal (struct hash_table_test
*ht
, Lisp_Object key
)
3551 EMACS_UINT hash
= sxhash (key
, 0);
3555 /* Value is a hash code for KEY for use in hash table H which uses as
3556 user-defined function to compare keys. The hash code returned is
3557 guaranteed to fit in a Lisp integer. */
3560 hashfn_user_defined (struct hash_table_test
*ht
, Lisp_Object key
)
3562 Lisp_Object args
[2], hash
;
3564 args
[0] = ht
->user_hash_function
;
3566 hash
= Ffuncall (2, args
);
3567 return hashfn_eq (ht
, hash
);
3570 /* An upper bound on the size of a hash table index. It must fit in
3571 ptrdiff_t and be a valid Emacs fixnum. */
3572 #define INDEX_SIZE_BOUND \
3573 ((ptrdiff_t) min (MOST_POSITIVE_FIXNUM, PTRDIFF_MAX / word_size))
3575 /* Create and initialize a new hash table.
3577 TEST specifies the test the hash table will use to compare keys.
3578 It must be either one of the predefined tests `eq', `eql' or
3579 `equal' or a symbol denoting a user-defined test named TEST with
3580 test and hash functions USER_TEST and USER_HASH.
3582 Give the table initial capacity SIZE, SIZE >= 0, an integer.
3584 If REHASH_SIZE is an integer, it must be > 0, and this hash table's
3585 new size when it becomes full is computed by adding REHASH_SIZE to
3586 its old size. If REHASH_SIZE is a float, it must be > 1.0, and the
3587 table's new size is computed by multiplying its old size with
3590 REHASH_THRESHOLD must be a float <= 1.0, and > 0. The table will
3591 be resized when the ratio of (number of entries in the table) /
3592 (table size) is >= REHASH_THRESHOLD.
3594 WEAK specifies the weakness of the table. If non-nil, it must be
3595 one of the symbols `key', `value', `key-or-value', or `key-and-value'. */
3598 make_hash_table (struct hash_table_test test
,
3599 Lisp_Object size
, Lisp_Object rehash_size
,
3600 Lisp_Object rehash_threshold
, Lisp_Object weak
)
3602 struct Lisp_Hash_Table
*h
;
3604 EMACS_INT index_size
, sz
;
3608 /* Preconditions. */
3609 eassert (SYMBOLP (test
.name
));
3610 eassert (INTEGERP (size
) && XINT (size
) >= 0);
3611 eassert ((INTEGERP (rehash_size
) && XINT (rehash_size
) > 0)
3612 || (FLOATP (rehash_size
) && 1 < XFLOAT_DATA (rehash_size
)));
3613 eassert (FLOATP (rehash_threshold
)
3614 && 0 < XFLOAT_DATA (rehash_threshold
)
3615 && XFLOAT_DATA (rehash_threshold
) <= 1.0);
3617 if (XFASTINT (size
) == 0)
3618 size
= make_number (1);
3620 sz
= XFASTINT (size
);
3621 index_float
= sz
/ XFLOAT_DATA (rehash_threshold
);
3622 index_size
= (index_float
< INDEX_SIZE_BOUND
+ 1
3623 ? next_almost_prime (index_float
)
3624 : INDEX_SIZE_BOUND
+ 1);
3625 if (INDEX_SIZE_BOUND
< max (index_size
, 2 * sz
))
3626 error ("Hash table too large");
3628 /* Allocate a table and initialize it. */
3629 h
= allocate_hash_table ();
3631 /* Initialize hash table slots. */
3634 h
->rehash_threshold
= rehash_threshold
;
3635 h
->rehash_size
= rehash_size
;
3637 h
->key_and_value
= Fmake_vector (make_number (2 * sz
), Qnil
);
3638 h
->hash
= Fmake_vector (size
, Qnil
);
3639 h
->next
= Fmake_vector (size
, Qnil
);
3640 h
->index
= Fmake_vector (make_number (index_size
), Qnil
);
3642 /* Set up the free list. */
3643 for (i
= 0; i
< sz
- 1; ++i
)
3644 set_hash_next_slot (h
, i
, make_number (i
+ 1));
3645 h
->next_free
= make_number (0);
3647 XSET_HASH_TABLE (table
, h
);
3648 eassert (HASH_TABLE_P (table
));
3649 eassert (XHASH_TABLE (table
) == h
);
3651 /* Maybe add this hash table to the list of all weak hash tables. */
3653 h
->next_weak
= NULL
;
3656 h
->next_weak
= weak_hash_tables
;
3657 weak_hash_tables
= h
;
3664 /* Return a copy of hash table H1. Keys and values are not copied,
3665 only the table itself is. */
3668 copy_hash_table (struct Lisp_Hash_Table
*h1
)
3671 struct Lisp_Hash_Table
*h2
;
3673 h2
= allocate_hash_table ();
3675 h2
->key_and_value
= Fcopy_sequence (h1
->key_and_value
);
3676 h2
->hash
= Fcopy_sequence (h1
->hash
);
3677 h2
->next
= Fcopy_sequence (h1
->next
);
3678 h2
->index
= Fcopy_sequence (h1
->index
);
3679 XSET_HASH_TABLE (table
, h2
);
3681 /* Maybe add this hash table to the list of all weak hash tables. */
3682 if (!NILP (h2
->weak
))
3684 h2
->next_weak
= weak_hash_tables
;
3685 weak_hash_tables
= h2
;
3692 /* Resize hash table H if it's too full. If H cannot be resized
3693 because it's already too large, throw an error. */
3696 maybe_resize_hash_table (struct Lisp_Hash_Table
*h
)
3698 if (NILP (h
->next_free
))
3700 ptrdiff_t old_size
= HASH_TABLE_SIZE (h
);
3701 EMACS_INT new_size
, index_size
, nsize
;
3705 if (INTEGERP (h
->rehash_size
))
3706 new_size
= old_size
+ XFASTINT (h
->rehash_size
);
3709 double float_new_size
= old_size
* XFLOAT_DATA (h
->rehash_size
);
3710 if (float_new_size
< INDEX_SIZE_BOUND
+ 1)
3712 new_size
= float_new_size
;
3713 if (new_size
<= old_size
)
3714 new_size
= old_size
+ 1;
3717 new_size
= INDEX_SIZE_BOUND
+ 1;
3719 index_float
= new_size
/ XFLOAT_DATA (h
->rehash_threshold
);
3720 index_size
= (index_float
< INDEX_SIZE_BOUND
+ 1
3721 ? next_almost_prime (index_float
)
3722 : INDEX_SIZE_BOUND
+ 1);
3723 nsize
= max (index_size
, 2 * new_size
);
3724 if (INDEX_SIZE_BOUND
< nsize
)
3725 error ("Hash table too large to resize");
3727 #ifdef ENABLE_CHECKING
3728 if (HASH_TABLE_P (Vpurify_flag
)
3729 && XHASH_TABLE (Vpurify_flag
) == h
)
3731 Lisp_Object args
[2];
3732 args
[0] = build_string ("Growing hash table to: %d");
3733 args
[1] = make_number (new_size
);
3738 set_hash_key_and_value (h
, larger_vector (h
->key_and_value
,
3739 2 * (new_size
- old_size
), -1));
3740 set_hash_next (h
, larger_vector (h
->next
, new_size
- old_size
, -1));
3741 set_hash_hash (h
, larger_vector (h
->hash
, new_size
- old_size
, -1));
3742 set_hash_index (h
, Fmake_vector (make_number (index_size
), Qnil
));
3744 /* Update the free list. Do it so that new entries are added at
3745 the end of the free list. This makes some operations like
3747 for (i
= old_size
; i
< new_size
- 1; ++i
)
3748 set_hash_next_slot (h
, i
, make_number (i
+ 1));
3750 if (!NILP (h
->next_free
))
3752 Lisp_Object last
, next
;
3754 last
= h
->next_free
;
3755 while (next
= HASH_NEXT (h
, XFASTINT (last
)),
3759 set_hash_next_slot (h
, XFASTINT (last
), make_number (old_size
));
3762 XSETFASTINT (h
->next_free
, old_size
);
3765 for (i
= 0; i
< old_size
; ++i
)
3766 if (!NILP (HASH_HASH (h
, i
)))
3768 EMACS_UINT hash_code
= XUINT (HASH_HASH (h
, i
));
3769 ptrdiff_t start_of_bucket
= hash_code
% ASIZE (h
->index
);
3770 set_hash_next_slot (h
, i
, HASH_INDEX (h
, start_of_bucket
));
3771 set_hash_index_slot (h
, start_of_bucket
, make_number (i
));
3777 /* Lookup KEY in hash table H. If HASH is non-null, return in *HASH
3778 the hash code of KEY. Value is the index of the entry in H
3779 matching KEY, or -1 if not found. */
3782 hash_lookup (struct Lisp_Hash_Table
*h
, Lisp_Object key
, EMACS_UINT
*hash
)
3784 EMACS_UINT hash_code
;
3785 ptrdiff_t start_of_bucket
;
3788 hash_code
= h
->test
.hashfn (&h
->test
, key
);
3789 eassert ((hash_code
& ~INTMASK
) == 0);
3793 start_of_bucket
= hash_code
% ASIZE (h
->index
);
3794 idx
= HASH_INDEX (h
, start_of_bucket
);
3796 /* We need not gcpro idx since it's either an integer or nil. */
3799 ptrdiff_t i
= XFASTINT (idx
);
3800 if (EQ (key
, HASH_KEY (h
, i
))
3802 && hash_code
== XUINT (HASH_HASH (h
, i
))
3803 && h
->test
.cmpfn (&h
->test
, key
, HASH_KEY (h
, i
))))
3805 idx
= HASH_NEXT (h
, i
);
3808 return NILP (idx
) ? -1 : XFASTINT (idx
);
3812 /* Put an entry into hash table H that associates KEY with VALUE.
3813 HASH is a previously computed hash code of KEY.
3814 Value is the index of the entry in H matching KEY. */
3817 hash_put (struct Lisp_Hash_Table
*h
, Lisp_Object key
, Lisp_Object value
,
3820 ptrdiff_t start_of_bucket
, i
;
3822 eassert ((hash
& ~INTMASK
) == 0);
3824 /* Increment count after resizing because resizing may fail. */
3825 maybe_resize_hash_table (h
);
3828 /* Store key/value in the key_and_value vector. */
3829 i
= XFASTINT (h
->next_free
);
3830 h
->next_free
= HASH_NEXT (h
, i
);
3831 set_hash_key_slot (h
, i
, key
);
3832 set_hash_value_slot (h
, i
, value
);
3834 /* Remember its hash code. */
3835 set_hash_hash_slot (h
, i
, make_number (hash
));
3837 /* Add new entry to its collision chain. */
3838 start_of_bucket
= hash
% ASIZE (h
->index
);
3839 set_hash_next_slot (h
, i
, HASH_INDEX (h
, start_of_bucket
));
3840 set_hash_index_slot (h
, start_of_bucket
, make_number (i
));
3845 /* Remove the entry matching KEY from hash table H, if there is one. */
3848 hash_remove_from_table (struct Lisp_Hash_Table
*h
, Lisp_Object key
)
3850 EMACS_UINT hash_code
;
3851 ptrdiff_t start_of_bucket
;
3852 Lisp_Object idx
, prev
;
3854 hash_code
= h
->test
.hashfn (&h
->test
, key
);
3855 eassert ((hash_code
& ~INTMASK
) == 0);
3856 start_of_bucket
= hash_code
% ASIZE (h
->index
);
3857 idx
= HASH_INDEX (h
, start_of_bucket
);
3860 /* We need not gcpro idx, prev since they're either integers or nil. */
3863 ptrdiff_t i
= XFASTINT (idx
);
3865 if (EQ (key
, HASH_KEY (h
, i
))
3867 && hash_code
== XUINT (HASH_HASH (h
, i
))
3868 && h
->test
.cmpfn (&h
->test
, key
, HASH_KEY (h
, i
))))
3870 /* Take entry out of collision chain. */
3872 set_hash_index_slot (h
, start_of_bucket
, HASH_NEXT (h
, i
));
3874 set_hash_next_slot (h
, XFASTINT (prev
), HASH_NEXT (h
, i
));
3876 /* Clear slots in key_and_value and add the slots to
3878 set_hash_key_slot (h
, i
, Qnil
);
3879 set_hash_value_slot (h
, i
, Qnil
);
3880 set_hash_hash_slot (h
, i
, Qnil
);
3881 set_hash_next_slot (h
, i
, h
->next_free
);
3882 h
->next_free
= make_number (i
);
3884 eassert (h
->count
>= 0);
3890 idx
= HASH_NEXT (h
, i
);
3896 /* Clear hash table H. */
3899 hash_clear (struct Lisp_Hash_Table
*h
)
3903 ptrdiff_t i
, size
= HASH_TABLE_SIZE (h
);
3905 for (i
= 0; i
< size
; ++i
)
3907 set_hash_next_slot (h
, i
, i
< size
- 1 ? make_number (i
+ 1) : Qnil
);
3908 set_hash_key_slot (h
, i
, Qnil
);
3909 set_hash_value_slot (h
, i
, Qnil
);
3910 set_hash_hash_slot (h
, i
, Qnil
);
3913 for (i
= 0; i
< ASIZE (h
->index
); ++i
)
3914 ASET (h
->index
, i
, Qnil
);
3916 h
->next_free
= make_number (0);
3923 /************************************************************************
3925 ************************************************************************/
3927 /* Sweep weak hash table H. REMOVE_ENTRIES_P means remove
3928 entries from the table that don't survive the current GC.
3929 !REMOVE_ENTRIES_P means mark entries that are in use. Value is
3930 true if anything was marked. */
3933 sweep_weak_table (struct Lisp_Hash_Table
*h
, bool remove_entries_p
)
3935 ptrdiff_t bucket
, n
;
3938 n
= ASIZE (h
->index
) & ~ARRAY_MARK_FLAG
;
3941 for (bucket
= 0; bucket
< n
; ++bucket
)
3943 Lisp_Object idx
, next
, prev
;
3945 /* Follow collision chain, removing entries that
3946 don't survive this garbage collection. */
3948 for (idx
= HASH_INDEX (h
, bucket
); !NILP (idx
); idx
= next
)
3950 ptrdiff_t i
= XFASTINT (idx
);
3951 bool key_known_to_survive_p
= survives_gc_p (HASH_KEY (h
, i
));
3952 bool value_known_to_survive_p
= survives_gc_p (HASH_VALUE (h
, i
));
3955 if (EQ (h
->weak
, Qkey
))
3956 remove_p
= !key_known_to_survive_p
;
3957 else if (EQ (h
->weak
, Qvalue
))
3958 remove_p
= !value_known_to_survive_p
;
3959 else if (EQ (h
->weak
, Qkey_or_value
))
3960 remove_p
= !(key_known_to_survive_p
|| value_known_to_survive_p
);
3961 else if (EQ (h
->weak
, Qkey_and_value
))
3962 remove_p
= !(key_known_to_survive_p
&& value_known_to_survive_p
);
3966 next
= HASH_NEXT (h
, i
);
3968 if (remove_entries_p
)
3972 /* Take out of collision chain. */
3974 set_hash_index_slot (h
, bucket
, next
);
3976 set_hash_next_slot (h
, XFASTINT (prev
), next
);
3978 /* Add to free list. */
3979 set_hash_next_slot (h
, i
, h
->next_free
);
3982 /* Clear key, value, and hash. */
3983 set_hash_key_slot (h
, i
, Qnil
);
3984 set_hash_value_slot (h
, i
, Qnil
);
3985 set_hash_hash_slot (h
, i
, Qnil
);
3998 /* Make sure key and value survive. */
3999 if (!key_known_to_survive_p
)
4001 mark_object (HASH_KEY (h
, i
));
4005 if (!value_known_to_survive_p
)
4007 mark_object (HASH_VALUE (h
, i
));
4018 /* Remove elements from weak hash tables that don't survive the
4019 current garbage collection. Remove weak tables that don't survive
4020 from Vweak_hash_tables. Called from gc_sweep. */
4023 sweep_weak_hash_tables (void)
4025 struct Lisp_Hash_Table
*h
, *used
, *next
;
4028 /* Mark all keys and values that are in use. Keep on marking until
4029 there is no more change. This is necessary for cases like
4030 value-weak table A containing an entry X -> Y, where Y is used in a
4031 key-weak table B, Z -> Y. If B comes after A in the list of weak
4032 tables, X -> Y might be removed from A, although when looking at B
4033 one finds that it shouldn't. */
4037 for (h
= weak_hash_tables
; h
; h
= h
->next_weak
)
4039 if (h
->header
.size
& ARRAY_MARK_FLAG
)
4040 marked
|= sweep_weak_table (h
, 0);
4045 /* Remove tables and entries that aren't used. */
4046 for (h
= weak_hash_tables
, used
= NULL
; h
; h
= next
)
4048 next
= h
->next_weak
;
4050 if (h
->header
.size
& ARRAY_MARK_FLAG
)
4052 /* TABLE is marked as used. Sweep its contents. */
4054 sweep_weak_table (h
, 1);
4056 /* Add table to the list of used weak hash tables. */
4057 h
->next_weak
= used
;
4062 weak_hash_tables
= used
;
4067 /***********************************************************************
4068 Hash Code Computation
4069 ***********************************************************************/
4071 /* Maximum depth up to which to dive into Lisp structures. */
4073 #define SXHASH_MAX_DEPTH 3
4075 /* Maximum length up to which to take list and vector elements into
4078 #define SXHASH_MAX_LEN 7
4080 /* Return a hash for string PTR which has length LEN. The hash value
4081 can be any EMACS_UINT value. */
4084 hash_string (char const *ptr
, ptrdiff_t len
)
4086 char const *p
= ptr
;
4087 char const *end
= p
+ len
;
4089 EMACS_UINT hash
= 0;
4094 hash
= sxhash_combine (hash
, c
);
4100 /* Return a hash for string PTR which has length LEN. The hash
4101 code returned is guaranteed to fit in a Lisp integer. */
4104 sxhash_string (char const *ptr
, ptrdiff_t len
)
4106 EMACS_UINT hash
= hash_string (ptr
, len
);
4107 return SXHASH_REDUCE (hash
);
4110 /* Return a hash for the floating point value VAL. */
4113 sxhash_float (double val
)
4115 EMACS_UINT hash
= 0;
4117 WORDS_PER_DOUBLE
= (sizeof val
/ sizeof hash
4118 + (sizeof val
% sizeof hash
!= 0))
4122 EMACS_UINT word
[WORDS_PER_DOUBLE
];
4126 memset (&u
.val
+ 1, 0, sizeof u
- sizeof u
.val
);
4127 for (i
= 0; i
< WORDS_PER_DOUBLE
; i
++)
4128 hash
= sxhash_combine (hash
, u
.word
[i
]);
4129 return SXHASH_REDUCE (hash
);
4132 /* Return a hash for list LIST. DEPTH is the current depth in the
4133 list. We don't recurse deeper than SXHASH_MAX_DEPTH in it. */
4136 sxhash_list (Lisp_Object list
, int depth
)
4138 EMACS_UINT hash
= 0;
4141 if (depth
< SXHASH_MAX_DEPTH
)
4143 CONSP (list
) && i
< SXHASH_MAX_LEN
;
4144 list
= XCDR (list
), ++i
)
4146 EMACS_UINT hash2
= sxhash (XCAR (list
), depth
+ 1);
4147 hash
= sxhash_combine (hash
, hash2
);
4152 EMACS_UINT hash2
= sxhash (list
, depth
+ 1);
4153 hash
= sxhash_combine (hash
, hash2
);
4156 return SXHASH_REDUCE (hash
);
4160 /* Return a hash for vector VECTOR. DEPTH is the current depth in
4161 the Lisp structure. */
4164 sxhash_vector (Lisp_Object vec
, int depth
)
4166 EMACS_UINT hash
= ASIZE (vec
);
4169 n
= min (SXHASH_MAX_LEN
, ASIZE (vec
));
4170 for (i
= 0; i
< n
; ++i
)
4172 EMACS_UINT hash2
= sxhash (AREF (vec
, i
), depth
+ 1);
4173 hash
= sxhash_combine (hash
, hash2
);
4176 return SXHASH_REDUCE (hash
);
4179 /* Return a hash for bool-vector VECTOR. */
4182 sxhash_bool_vector (Lisp_Object vec
)
4184 EMACS_INT size
= bool_vector_size (vec
);
4185 EMACS_UINT hash
= size
;
4188 n
= min (SXHASH_MAX_LEN
, bool_vector_words (size
));
4189 for (i
= 0; i
< n
; ++i
)
4190 hash
= sxhash_combine (hash
, bool_vector_data (vec
)[i
]);
4192 return SXHASH_REDUCE (hash
);
4196 /* Return a hash code for OBJ. DEPTH is the current depth in the Lisp
4197 structure. Value is an unsigned integer clipped to INTMASK. */
4200 sxhash (Lisp_Object obj
, int depth
)
4204 if (depth
> SXHASH_MAX_DEPTH
)
4207 switch (XTYPE (obj
))
4218 obj
= SYMBOL_NAME (obj
);
4222 hash
= sxhash_string (SSDATA (obj
), SBYTES (obj
));
4225 /* This can be everything from a vector to an overlay. */
4226 case Lisp_Vectorlike
:
4228 /* According to the CL HyperSpec, two arrays are equal only if
4229 they are `eq', except for strings and bit-vectors. In
4230 Emacs, this works differently. We have to compare element
4232 hash
= sxhash_vector (obj
, depth
);
4233 else if (BOOL_VECTOR_P (obj
))
4234 hash
= sxhash_bool_vector (obj
);
4236 /* Others are `equal' if they are `eq', so let's take their
4242 hash
= sxhash_list (obj
, depth
);
4246 hash
= sxhash_float (XFLOAT_DATA (obj
));
4258 /***********************************************************************
4260 ***********************************************************************/
4263 DEFUN ("sxhash", Fsxhash
, Ssxhash
, 1, 1, 0,
4264 doc
: /* Compute a hash code for OBJ and return it as integer. */)
4267 EMACS_UINT hash
= sxhash (obj
, 0);
4268 return make_number (hash
);
4272 DEFUN ("make-hash-table", Fmake_hash_table
, Smake_hash_table
, 0, MANY
, 0,
4273 doc
: /* Create and return a new hash table.
4275 Arguments are specified as keyword/argument pairs. The following
4276 arguments are defined:
4278 :test TEST -- TEST must be a symbol that specifies how to compare
4279 keys. Default is `eql'. Predefined are the tests `eq', `eql', and
4280 `equal'. User-supplied test and hash functions can be specified via
4281 `define-hash-table-test'.
4283 :size SIZE -- A hint as to how many elements will be put in the table.
4286 :rehash-size REHASH-SIZE - Indicates how to expand the table when it
4287 fills up. If REHASH-SIZE is an integer, increase the size by that
4288 amount. If it is a float, it must be > 1.0, and the new size is the
4289 old size multiplied by that factor. Default is 1.5.
4291 :rehash-threshold THRESHOLD -- THRESHOLD must a float > 0, and <= 1.0.
4292 Resize the hash table when the ratio (number of entries / table size)
4293 is greater than or equal to THRESHOLD. Default is 0.8.
4295 :weakness WEAK -- WEAK must be one of nil, t, `key', `value',
4296 `key-or-value', or `key-and-value'. If WEAK is not nil, the table
4297 returned is a weak table. Key/value pairs are removed from a weak
4298 hash table when there are no non-weak references pointing to their
4299 key, value, one of key or value, or both key and value, depending on
4300 WEAK. WEAK t is equivalent to `key-and-value'. Default value of WEAK
4303 usage: (make-hash-table &rest KEYWORD-ARGS) */)
4304 (ptrdiff_t nargs
, Lisp_Object
*args
)
4306 Lisp_Object test
, size
, rehash_size
, rehash_threshold
, weak
;
4307 struct hash_table_test testdesc
;
4311 /* The vector `used' is used to keep track of arguments that
4312 have been consumed. */
4313 used
= alloca (nargs
* sizeof *used
);
4314 memset (used
, 0, nargs
* sizeof *used
);
4316 /* See if there's a `:test TEST' among the arguments. */
4317 i
= get_key_arg (QCtest
, nargs
, args
, used
);
4318 test
= i
? args
[i
] : Qeql
;
4320 testdesc
= hashtest_eq
;
4321 else if (EQ (test
, Qeql
))
4322 testdesc
= hashtest_eql
;
4323 else if (EQ (test
, Qequal
))
4324 testdesc
= hashtest_equal
;
4327 /* See if it is a user-defined test. */
4330 prop
= Fget (test
, Qhash_table_test
);
4331 if (!CONSP (prop
) || !CONSP (XCDR (prop
)))
4332 signal_error ("Invalid hash table test", test
);
4333 testdesc
.name
= test
;
4334 testdesc
.user_cmp_function
= XCAR (prop
);
4335 testdesc
.user_hash_function
= XCAR (XCDR (prop
));
4336 testdesc
.hashfn
= hashfn_user_defined
;
4337 testdesc
.cmpfn
= cmpfn_user_defined
;
4340 /* See if there's a `:size SIZE' argument. */
4341 i
= get_key_arg (QCsize
, nargs
, args
, used
);
4342 size
= i
? args
[i
] : Qnil
;
4344 size
= make_number (DEFAULT_HASH_SIZE
);
4345 else if (!INTEGERP (size
) || XINT (size
) < 0)
4346 signal_error ("Invalid hash table size", size
);
4348 /* Look for `:rehash-size SIZE'. */
4349 i
= get_key_arg (QCrehash_size
, nargs
, args
, used
);
4350 rehash_size
= i
? args
[i
] : make_float (DEFAULT_REHASH_SIZE
);
4351 if (! ((INTEGERP (rehash_size
) && 0 < XINT (rehash_size
))
4352 || (FLOATP (rehash_size
) && 1 < XFLOAT_DATA (rehash_size
))))
4353 signal_error ("Invalid hash table rehash size", rehash_size
);
4355 /* Look for `:rehash-threshold THRESHOLD'. */
4356 i
= get_key_arg (QCrehash_threshold
, nargs
, args
, used
);
4357 rehash_threshold
= i
? args
[i
] : make_float (DEFAULT_REHASH_THRESHOLD
);
4358 if (! (FLOATP (rehash_threshold
)
4359 && 0 < XFLOAT_DATA (rehash_threshold
)
4360 && XFLOAT_DATA (rehash_threshold
) <= 1))
4361 signal_error ("Invalid hash table rehash threshold", rehash_threshold
);
4363 /* Look for `:weakness WEAK'. */
4364 i
= get_key_arg (QCweakness
, nargs
, args
, used
);
4365 weak
= i
? args
[i
] : Qnil
;
4367 weak
= Qkey_and_value
;
4370 && !EQ (weak
, Qvalue
)
4371 && !EQ (weak
, Qkey_or_value
)
4372 && !EQ (weak
, Qkey_and_value
))
4373 signal_error ("Invalid hash table weakness", weak
);
4375 /* Now, all args should have been used up, or there's a problem. */
4376 for (i
= 0; i
< nargs
; ++i
)
4378 signal_error ("Invalid argument list", args
[i
]);
4380 return make_hash_table (testdesc
, size
, rehash_size
, rehash_threshold
, weak
);
4384 DEFUN ("copy-hash-table", Fcopy_hash_table
, Scopy_hash_table
, 1, 1, 0,
4385 doc
: /* Return a copy of hash table TABLE. */)
4388 return copy_hash_table (check_hash_table (table
));
4392 DEFUN ("hash-table-count", Fhash_table_count
, Shash_table_count
, 1, 1, 0,
4393 doc
: /* Return the number of elements in TABLE. */)
4396 return make_number (check_hash_table (table
)->count
);
4400 DEFUN ("hash-table-rehash-size", Fhash_table_rehash_size
,
4401 Shash_table_rehash_size
, 1, 1, 0,
4402 doc
: /* Return the current rehash size of TABLE. */)
4405 return check_hash_table (table
)->rehash_size
;
4409 DEFUN ("hash-table-rehash-threshold", Fhash_table_rehash_threshold
,
4410 Shash_table_rehash_threshold
, 1, 1, 0,
4411 doc
: /* Return the current rehash threshold of TABLE. */)
4414 return check_hash_table (table
)->rehash_threshold
;
4418 DEFUN ("hash-table-size", Fhash_table_size
, Shash_table_size
, 1, 1, 0,
4419 doc
: /* Return the size of TABLE.
4420 The size can be used as an argument to `make-hash-table' to create
4421 a hash table than can hold as many elements as TABLE holds
4422 without need for resizing. */)
4425 struct Lisp_Hash_Table
*h
= check_hash_table (table
);
4426 return make_number (HASH_TABLE_SIZE (h
));
4430 DEFUN ("hash-table-test", Fhash_table_test
, Shash_table_test
, 1, 1, 0,
4431 doc
: /* Return the test TABLE uses. */)
4434 return check_hash_table (table
)->test
.name
;
4438 DEFUN ("hash-table-weakness", Fhash_table_weakness
, Shash_table_weakness
,
4440 doc
: /* Return the weakness of TABLE. */)
4443 return check_hash_table (table
)->weak
;
4447 DEFUN ("hash-table-p", Fhash_table_p
, Shash_table_p
, 1, 1, 0,
4448 doc
: /* Return t if OBJ is a Lisp hash table object. */)
4451 return HASH_TABLE_P (obj
) ? Qt
: Qnil
;
4455 DEFUN ("clrhash", Fclrhash
, Sclrhash
, 1, 1, 0,
4456 doc
: /* Clear hash table TABLE and return it. */)
4459 hash_clear (check_hash_table (table
));
4460 /* Be compatible with XEmacs. */
4465 DEFUN ("gethash", Fgethash
, Sgethash
, 2, 3, 0,
4466 doc
: /* Look up KEY in TABLE and return its associated value.
4467 If KEY is not found, return DFLT which defaults to nil. */)
4468 (Lisp_Object key
, Lisp_Object table
, Lisp_Object dflt
)
4470 struct Lisp_Hash_Table
*h
= check_hash_table (table
);
4471 ptrdiff_t i
= hash_lookup (h
, key
, NULL
);
4472 return i
>= 0 ? HASH_VALUE (h
, i
) : dflt
;
4476 DEFUN ("puthash", Fputhash
, Sputhash
, 3, 3, 0,
4477 doc
: /* Associate KEY with VALUE in hash table TABLE.
4478 If KEY is already present in table, replace its current value with
4479 VALUE. In any case, return VALUE. */)
4480 (Lisp_Object key
, Lisp_Object value
, Lisp_Object table
)
4482 struct Lisp_Hash_Table
*h
= check_hash_table (table
);
4486 i
= hash_lookup (h
, key
, &hash
);
4488 set_hash_value_slot (h
, i
, value
);
4490 hash_put (h
, key
, value
, hash
);
4496 DEFUN ("remhash", Fremhash
, Sremhash
, 2, 2, 0,
4497 doc
: /* Remove KEY from TABLE. */)
4498 (Lisp_Object key
, Lisp_Object table
)
4500 struct Lisp_Hash_Table
*h
= check_hash_table (table
);
4501 hash_remove_from_table (h
, key
);
4506 DEFUN ("maphash", Fmaphash
, Smaphash
, 2, 2, 0,
4507 doc
: /* Call FUNCTION for all entries in hash table TABLE.
4508 FUNCTION is called with two arguments, KEY and VALUE. */)
4509 (Lisp_Object function
, Lisp_Object table
)
4511 struct Lisp_Hash_Table
*h
= check_hash_table (table
);
4512 Lisp_Object args
[3];
4515 for (i
= 0; i
< HASH_TABLE_SIZE (h
); ++i
)
4516 if (!NILP (HASH_HASH (h
, i
)))
4519 args
[1] = HASH_KEY (h
, i
);
4520 args
[2] = HASH_VALUE (h
, i
);
4528 DEFUN ("define-hash-table-test", Fdefine_hash_table_test
,
4529 Sdefine_hash_table_test
, 3, 3, 0,
4530 doc
: /* Define a new hash table test with name NAME, a symbol.
4532 In hash tables created with NAME specified as test, use TEST to
4533 compare keys, and HASH for computing hash codes of keys.
4535 TEST must be a function taking two arguments and returning non-nil if
4536 both arguments are the same. HASH must be a function taking one
4537 argument and returning an object that is the hash code of the argument.
4538 It should be the case that if (eq (funcall HASH x1) (funcall HASH x2))
4539 returns nil, then (funcall TEST x1 x2) also returns nil. */)
4540 (Lisp_Object name
, Lisp_Object test
, Lisp_Object hash
)
4542 return Fput (name
, Qhash_table_test
, list2 (test
, hash
));
4547 /************************************************************************
4548 MD5, SHA-1, and SHA-2
4549 ************************************************************************/
4556 /* ALGORITHM is a symbol: md5, sha1, sha224 and so on. */
4559 secure_hash (Lisp_Object algorithm
, Lisp_Object object
, Lisp_Object start
, Lisp_Object end
, Lisp_Object coding_system
, Lisp_Object noerror
, Lisp_Object binary
)
4563 EMACS_INT start_char
= 0, end_char
= 0;
4564 ptrdiff_t start_byte
, end_byte
;
4565 register EMACS_INT b
, e
;
4566 register struct buffer
*bp
;
4569 void *(*hash_func
) (const char *, size_t, void *);
4572 CHECK_SYMBOL (algorithm
);
4574 if (STRINGP (object
))
4576 if (NILP (coding_system
))
4578 /* Decide the coding-system to encode the data with. */
4580 if (STRING_MULTIBYTE (object
))
4581 /* use default, we can't guess correct value */
4582 coding_system
= preferred_coding_system ();
4584 coding_system
= Qraw_text
;
4587 if (NILP (Fcoding_system_p (coding_system
)))
4589 /* Invalid coding system. */
4591 if (!NILP (noerror
))
4592 coding_system
= Qraw_text
;
4594 xsignal1 (Qcoding_system_error
, coding_system
);
4597 if (STRING_MULTIBYTE (object
))
4598 object
= code_convert_string (object
, coding_system
, Qnil
, 1, 0, 1);
4600 size
= SCHARS (object
);
4604 CHECK_NUMBER (start
);
4606 start_char
= XINT (start
);
4618 end_char
= XINT (end
);
4624 if (!(0 <= start_char
&& start_char
<= end_char
&& end_char
<= size
))
4625 args_out_of_range_3 (object
, make_number (start_char
),
4626 make_number (end_char
));
4628 start_byte
= NILP (start
) ? 0 : string_char_to_byte (object
, start_char
);
4630 NILP (end
) ? SBYTES (object
) : string_char_to_byte (object
, end_char
);
4634 struct buffer
*prev
= current_buffer
;
4636 record_unwind_current_buffer ();
4638 CHECK_BUFFER (object
);
4640 bp
= XBUFFER (object
);
4641 set_buffer_internal (bp
);
4647 CHECK_NUMBER_COERCE_MARKER (start
);
4655 CHECK_NUMBER_COERCE_MARKER (end
);
4660 temp
= b
, b
= e
, e
= temp
;
4662 if (!(BEGV
<= b
&& e
<= ZV
))
4663 args_out_of_range (start
, end
);
4665 if (NILP (coding_system
))
4667 /* Decide the coding-system to encode the data with.
4668 See fileio.c:Fwrite-region */
4670 if (!NILP (Vcoding_system_for_write
))
4671 coding_system
= Vcoding_system_for_write
;
4674 bool force_raw_text
= 0;
4676 coding_system
= BVAR (XBUFFER (object
), buffer_file_coding_system
);
4677 if (NILP (coding_system
)
4678 || NILP (Flocal_variable_p (Qbuffer_file_coding_system
, Qnil
)))
4680 coding_system
= Qnil
;
4681 if (NILP (BVAR (current_buffer
, enable_multibyte_characters
)))
4685 if (NILP (coding_system
) && !NILP (Fbuffer_file_name (object
)))
4687 /* Check file-coding-system-alist. */
4688 Lisp_Object args
[4], val
;
4690 args
[0] = Qwrite_region
; args
[1] = start
; args
[2] = end
;
4691 args
[3] = Fbuffer_file_name (object
);
4692 val
= Ffind_operation_coding_system (4, args
);
4693 if (CONSP (val
) && !NILP (XCDR (val
)))
4694 coding_system
= XCDR (val
);
4697 if (NILP (coding_system
)
4698 && !NILP (BVAR (XBUFFER (object
), buffer_file_coding_system
)))
4700 /* If we still have not decided a coding system, use the
4701 default value of buffer-file-coding-system. */
4702 coding_system
= BVAR (XBUFFER (object
), buffer_file_coding_system
);
4706 && !NILP (Ffboundp (Vselect_safe_coding_system_function
)))
4707 /* Confirm that VAL can surely encode the current region. */
4708 coding_system
= call4 (Vselect_safe_coding_system_function
,
4709 make_number (b
), make_number (e
),
4710 coding_system
, Qnil
);
4713 coding_system
= Qraw_text
;
4716 if (NILP (Fcoding_system_p (coding_system
)))
4718 /* Invalid coding system. */
4720 if (!NILP (noerror
))
4721 coding_system
= Qraw_text
;
4723 xsignal1 (Qcoding_system_error
, coding_system
);
4727 object
= make_buffer_string (b
, e
, 0);
4728 set_buffer_internal (prev
);
4729 /* Discard the unwind protect for recovering the current
4733 if (STRING_MULTIBYTE (object
))
4734 object
= code_convert_string (object
, coding_system
, Qnil
, 1, 0, 0);
4736 end_byte
= SBYTES (object
);
4739 if (EQ (algorithm
, Qmd5
))
4741 digest_size
= MD5_DIGEST_SIZE
;
4742 hash_func
= md5_buffer
;
4744 else if (EQ (algorithm
, Qsha1
))
4746 digest_size
= SHA1_DIGEST_SIZE
;
4747 hash_func
= sha1_buffer
;
4749 else if (EQ (algorithm
, Qsha224
))
4751 digest_size
= SHA224_DIGEST_SIZE
;
4752 hash_func
= sha224_buffer
;
4754 else if (EQ (algorithm
, Qsha256
))
4756 digest_size
= SHA256_DIGEST_SIZE
;
4757 hash_func
= sha256_buffer
;
4759 else if (EQ (algorithm
, Qsha384
))
4761 digest_size
= SHA384_DIGEST_SIZE
;
4762 hash_func
= sha384_buffer
;
4764 else if (EQ (algorithm
, Qsha512
))
4766 digest_size
= SHA512_DIGEST_SIZE
;
4767 hash_func
= sha512_buffer
;
4770 error ("Invalid algorithm arg: %s", SDATA (Fsymbol_name (algorithm
)));
4772 /* allocate 2 x digest_size so that it can be re-used to hold the
4774 digest
= make_uninit_string (digest_size
* 2);
4776 hash_func (SSDATA (object
) + start_byte
,
4777 end_byte
- start_byte
,
4782 unsigned char *p
= SDATA (digest
);
4783 for (i
= digest_size
- 1; i
>= 0; i
--)
4785 static char const hexdigit
[16] = "0123456789abcdef";
4787 p
[2 * i
] = hexdigit
[p_i
>> 4];
4788 p
[2 * i
+ 1] = hexdigit
[p_i
& 0xf];
4793 return make_unibyte_string (SSDATA (digest
), digest_size
);
4796 DEFUN ("md5", Fmd5
, Smd5
, 1, 5, 0,
4797 doc
: /* Return MD5 message digest of OBJECT, a buffer or string.
4799 A message digest is a cryptographic checksum of a document, and the
4800 algorithm to calculate it is defined in RFC 1321.
4802 The two optional arguments START and END are character positions
4803 specifying for which part of OBJECT the message digest should be
4804 computed. If nil or omitted, the digest is computed for the whole
4807 The MD5 message digest is computed from the result of encoding the
4808 text in a coding system, not directly from the internal Emacs form of
4809 the text. The optional fourth argument CODING-SYSTEM specifies which
4810 coding system to encode the text with. It should be the same coding
4811 system that you used or will use when actually writing the text into a
4814 If CODING-SYSTEM is nil or omitted, the default depends on OBJECT. If
4815 OBJECT is a buffer, the default for CODING-SYSTEM is whatever coding
4816 system would be chosen by default for writing this text into a file.
4818 If OBJECT is a string, the most preferred coding system (see the
4819 command `prefer-coding-system') is used.
4821 If NOERROR is non-nil, silently assume the `raw-text' coding if the
4822 guesswork fails. Normally, an error is signaled in such case. */)
4823 (Lisp_Object object
, Lisp_Object start
, Lisp_Object end
, Lisp_Object coding_system
, Lisp_Object noerror
)
4825 return secure_hash (Qmd5
, object
, start
, end
, coding_system
, noerror
, Qnil
);
4828 DEFUN ("secure-hash", Fsecure_hash
, Ssecure_hash
, 2, 5, 0,
4829 doc
: /* Return the secure hash of OBJECT, a buffer or string.
4830 ALGORITHM is a symbol specifying the hash to use:
4831 md5, sha1, sha224, sha256, sha384 or sha512.
4833 The two optional arguments START and END are positions specifying for
4834 which part of OBJECT to compute the hash. If nil or omitted, uses the
4837 If BINARY is non-nil, returns a string in binary form. */)
4838 (Lisp_Object algorithm
, Lisp_Object object
, Lisp_Object start
, Lisp_Object end
, Lisp_Object binary
)
4840 return secure_hash (algorithm
, object
, start
, end
, Qnil
, Qnil
, binary
);
4846 DEFSYM (Qmd5
, "md5");
4847 DEFSYM (Qsha1
, "sha1");
4848 DEFSYM (Qsha224
, "sha224");
4849 DEFSYM (Qsha256
, "sha256");
4850 DEFSYM (Qsha384
, "sha384");
4851 DEFSYM (Qsha512
, "sha512");
4853 /* Hash table stuff. */
4854 DEFSYM (Qhash_table_p
, "hash-table-p");
4856 DEFSYM (Qeql
, "eql");
4857 DEFSYM (Qequal
, "equal");
4858 DEFSYM (QCtest
, ":test");
4859 DEFSYM (QCsize
, ":size");
4860 DEFSYM (QCrehash_size
, ":rehash-size");
4861 DEFSYM (QCrehash_threshold
, ":rehash-threshold");
4862 DEFSYM (QCweakness
, ":weakness");
4863 DEFSYM (Qkey
, "key");
4864 DEFSYM (Qvalue
, "value");
4865 DEFSYM (Qhash_table_test
, "hash-table-test");
4866 DEFSYM (Qkey_or_value
, "key-or-value");
4867 DEFSYM (Qkey_and_value
, "key-and-value");
4870 defsubr (&Smake_hash_table
);
4871 defsubr (&Scopy_hash_table
);
4872 defsubr (&Shash_table_count
);
4873 defsubr (&Shash_table_rehash_size
);
4874 defsubr (&Shash_table_rehash_threshold
);
4875 defsubr (&Shash_table_size
);
4876 defsubr (&Shash_table_test
);
4877 defsubr (&Shash_table_weakness
);
4878 defsubr (&Shash_table_p
);
4879 defsubr (&Sclrhash
);
4880 defsubr (&Sgethash
);
4881 defsubr (&Sputhash
);
4882 defsubr (&Sremhash
);
4883 defsubr (&Smaphash
);
4884 defsubr (&Sdefine_hash_table_test
);
4886 DEFSYM (Qstring_lessp
, "string-lessp");
4887 DEFSYM (Qprovide
, "provide");
4888 DEFSYM (Qrequire
, "require");
4889 DEFSYM (Qyes_or_no_p_history
, "yes-or-no-p-history");
4890 DEFSYM (Qcursor_in_echo_area
, "cursor-in-echo-area");
4891 DEFSYM (Qwidget_type
, "widget-type");
4893 staticpro (&string_char_byte_cache_string
);
4894 string_char_byte_cache_string
= Qnil
;
4896 require_nesting_list
= Qnil
;
4897 staticpro (&require_nesting_list
);
4899 Fset (Qyes_or_no_p_history
, Qnil
);
4901 DEFVAR_LISP ("features", Vfeatures
,
4902 doc
: /* A list of symbols which are the features of the executing Emacs.
4903 Used by `featurep' and `require', and altered by `provide'. */);
4904 Vfeatures
= list1 (intern_c_string ("emacs"));
4905 DEFSYM (Qsubfeatures
, "subfeatures");
4906 DEFSYM (Qfuncall
, "funcall");
4908 #ifdef HAVE_LANGINFO_CODESET
4909 DEFSYM (Qcodeset
, "codeset");
4910 DEFSYM (Qdays
, "days");
4911 DEFSYM (Qmonths
, "months");
4912 DEFSYM (Qpaper
, "paper");
4913 #endif /* HAVE_LANGINFO_CODESET */
4915 DEFVAR_BOOL ("use-dialog-box", use_dialog_box
,
4916 doc
: /* Non-nil means mouse commands use dialog boxes to ask questions.
4917 This applies to `y-or-n-p' and `yes-or-no-p' questions asked by commands
4918 invoked by mouse clicks and mouse menu items.
4920 On some platforms, file selection dialogs are also enabled if this is
4924 DEFVAR_BOOL ("use-file-dialog", use_file_dialog
,
4925 doc
: /* Non-nil means mouse commands use a file dialog to ask for files.
4926 This applies to commands from menus and tool bar buttons even when
4927 they are initiated from the keyboard. If `use-dialog-box' is nil,
4928 that disables the use of a file dialog, regardless of the value of
4930 use_file_dialog
= 1;
4932 defsubr (&Sidentity
);
4935 defsubr (&Ssafe_length
);
4936 defsubr (&Sstring_bytes
);
4937 defsubr (&Sstring_equal
);
4938 defsubr (&Scompare_strings
);
4939 defsubr (&Sstring_lessp
);
4942 defsubr (&Svconcat
);
4943 defsubr (&Scopy_sequence
);
4944 defsubr (&Sstring_make_multibyte
);
4945 defsubr (&Sstring_make_unibyte
);
4946 defsubr (&Sstring_as_multibyte
);
4947 defsubr (&Sstring_as_unibyte
);
4948 defsubr (&Sstring_to_multibyte
);
4949 defsubr (&Sstring_to_unibyte
);
4950 defsubr (&Scopy_alist
);
4951 defsubr (&Ssubstring
);
4952 defsubr (&Ssubstring_no_properties
);
4965 defsubr (&Snreverse
);
4966 defsubr (&Sreverse
);
4968 defsubr (&Splist_get
);
4970 defsubr (&Splist_put
);
4972 defsubr (&Slax_plist_get
);
4973 defsubr (&Slax_plist_put
);
4976 defsubr (&Sequal_including_properties
);
4977 defsubr (&Sfillarray
);
4978 defsubr (&Sclear_string
);
4982 defsubr (&Smapconcat
);
4983 defsubr (&Syes_or_no_p
);
4984 defsubr (&Sload_average
);
4985 defsubr (&Sfeaturep
);
4986 defsubr (&Srequire
);
4987 defsubr (&Sprovide
);
4988 defsubr (&Splist_member
);
4989 defsubr (&Swidget_put
);
4990 defsubr (&Swidget_get
);
4991 defsubr (&Swidget_apply
);
4992 defsubr (&Sbase64_encode_region
);
4993 defsubr (&Sbase64_decode_region
);
4994 defsubr (&Sbase64_encode_string
);
4995 defsubr (&Sbase64_decode_string
);
4997 defsubr (&Ssecure_hash
);
4998 defsubr (&Slocale_info
);
5000 hashtest_eq
.name
= Qeq
;
5001 hashtest_eq
.user_hash_function
= Qnil
;
5002 hashtest_eq
.user_cmp_function
= Qnil
;
5003 hashtest_eq
.cmpfn
= 0;
5004 hashtest_eq
.hashfn
= hashfn_eq
;
5006 hashtest_eql
.name
= Qeql
;
5007 hashtest_eql
.user_hash_function
= Qnil
;
5008 hashtest_eql
.user_cmp_function
= Qnil
;
5009 hashtest_eql
.cmpfn
= cmpfn_eql
;
5010 hashtest_eql
.hashfn
= hashfn_eql
;
5012 hashtest_equal
.name
= Qequal
;
5013 hashtest_equal
.user_hash_function
= Qnil
;
5014 hashtest_equal
.user_cmp_function
= Qnil
;
5015 hashtest_equal
.cmpfn
= cmpfn_equal
;
5016 hashtest_equal
.hashfn
= hashfn_equal
;