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1 @c -*-texinfo-*-
2 @c This is part of the GNU Emacs Lisp Reference Manual.
3 @c Copyright (C) 1990-1995, 1998-1999, 2001-2012
4 @c Free Software Foundation, Inc.
5 @c See the file elisp.texi for copying conditions.
6 @setfilename ../../info/strings
7 @node Strings and Characters, Lists, Numbers, Top
8 @comment node-name, next, previous, up
9 @chapter Strings and Characters
10 @cindex strings
11 @cindex character arrays
12 @cindex characters
13 @cindex bytes
14
15 A string in Emacs Lisp is an array that contains an ordered sequence
16 of characters. Strings are used as names of symbols, buffers, and
17 files; to send messages to users; to hold text being copied between
18 buffers; and for many other purposes. Because strings are so important,
19 Emacs Lisp has many functions expressly for manipulating them. Emacs
20 Lisp programs use strings more often than individual characters.
21
22 @xref{Strings of Events}, for special considerations for strings of
23 keyboard character events.
24
25 @menu
26 * Basics: String Basics. Basic properties of strings and characters.
27 * Predicates for Strings:: Testing whether an object is a string or char.
28 * Creating Strings:: Functions to allocate new strings.
29 * Modifying Strings:: Altering the contents of an existing string.
30 * Text Comparison:: Comparing characters or strings.
31 * String Conversion:: Converting to and from characters and strings.
32 * Formatting Strings:: @code{format}: Emacs's analogue of @code{printf}.
33 * Case Conversion:: Case conversion functions.
34 * Case Tables:: Customizing case conversion.
35 @end menu
36
37 @node String Basics
38 @section String and Character Basics
39
40 Characters are represented in Emacs Lisp as integers;
41 whether an integer is a character or not is determined only by how it is
42 used. Thus, strings really contain integers. @xref{Character Codes},
43 for details about character representation in Emacs.
44
45 The length of a string (like any array) is fixed, and cannot be
46 altered once the string exists. Strings in Lisp are @emph{not}
47 terminated by a distinguished character code. (By contrast, strings in
48 C are terminated by a character with @acronym{ASCII} code 0.)
49
50 Since strings are arrays, and therefore sequences as well, you can
51 operate on them with the general array and sequence functions.
52 (@xref{Sequences Arrays Vectors}.) For example, you can access or
53 change individual characters in a string using the functions @code{aref}
54 and @code{aset} (@pxref{Array Functions}).
55
56 There are two text representations for non-@acronym{ASCII} characters in
57 Emacs strings (and in buffers): unibyte and multibyte (@pxref{Text
58 Representations}). For most Lisp programming, you don't need to be
59 concerned with these two representations.
60
61 Sometimes key sequences are represented as unibyte strings. When a
62 unibyte string is a key sequence, string elements in the range 128 to
63 255 represent meta characters (which are large integers) rather than
64 character codes in the range 128 to 255. Strings cannot hold
65 characters that have the hyper, super or alt modifiers; they can hold
66 @acronym{ASCII} control characters, but no other control characters.
67 They do not distinguish case in @acronym{ASCII} control characters.
68 If you want to store such characters in a sequence, such as a key
69 sequence, you must use a vector instead of a string. @xref{Character
70 Type}, for more information about keyboard input characters.
71
72 Strings are useful for holding regular expressions. You can also
73 match regular expressions against strings with @code{string-match}
74 (@pxref{Regexp Search}). The functions @code{match-string}
75 (@pxref{Simple Match Data}) and @code{replace-match} (@pxref{Replacing
76 Match}) are useful for decomposing and modifying strings after
77 matching regular expressions against them.
78
79 Like a buffer, a string can contain text properties for the characters
80 in it, as well as the characters themselves. @xref{Text Properties}.
81 All the Lisp primitives that copy text from strings to buffers or other
82 strings also copy the properties of the characters being copied.
83
84 @xref{Text}, for information about functions that display strings or
85 copy them into buffers. @xref{Character Type}, and @ref{String Type},
86 for information about the syntax of characters and strings.
87 @xref{Non-ASCII Characters}, for functions to convert between text
88 representations and to encode and decode character codes.
89
90 @node Predicates for Strings
91 @section The Predicates for Strings
92
93 For more information about general sequence and array predicates,
94 see @ref{Sequences Arrays Vectors}, and @ref{Arrays}.
95
96 @defun stringp object
97 This function returns @code{t} if @var{object} is a string, @code{nil}
98 otherwise.
99 @end defun
100
101 @defun string-or-null-p object
102 This function returns @code{t} if @var{object} is a string or
103 @code{nil}. It returns @code{nil} otherwise.
104 @end defun
105
106 @defun char-or-string-p object
107 This function returns @code{t} if @var{object} is a string or a
108 character (i.e., an integer), @code{nil} otherwise.
109 @end defun
110
111 @node Creating Strings
112 @section Creating Strings
113
114 The following functions create strings, either from scratch, or by
115 putting strings together, or by taking them apart.
116
117 @defun make-string count character
118 This function returns a string made up of @var{count} repetitions of
119 @var{character}. If @var{count} is negative, an error is signaled.
120
121 @example
122 (make-string 5 ?x)
123 @result{} "xxxxx"
124 (make-string 0 ?x)
125 @result{} ""
126 @end example
127
128 Other functions to compare with this one include @code{make-vector}
129 (@pxref{Vectors}) and @code{make-list} (@pxref{Building Lists}).
130 @end defun
131
132 @defun string &rest characters
133 This returns a string containing the characters @var{characters}.
134
135 @example
136 (string ?a ?b ?c)
137 @result{} "abc"
138 @end example
139 @end defun
140
141 @defun substring string start &optional end
142 This function returns a new string which consists of those characters
143 from @var{string} in the range from (and including) the character at the
144 index @var{start} up to (but excluding) the character at the index
145 @var{end}. The first character is at index zero.
146
147 @example
148 @group
149 (substring "abcdefg" 0 3)
150 @result{} "abc"
151 @end group
152 @end example
153
154 @noindent
155 In the above example, the index for @samp{a} is 0, the index for
156 @samp{b} is 1, and the index for @samp{c} is 2. The index 3---which
157 is the fourth character in the string---marks the character position
158 up to which the substring is copied. Thus, @samp{abc} is copied from
159 the string @code{"abcdefg"}.
160
161 A negative number counts from the end of the string, so that @minus{}1
162 signifies the index of the last character of the string. For example:
163
164 @example
165 @group
166 (substring "abcdefg" -3 -1)
167 @result{} "ef"
168 @end group
169 @end example
170
171 @noindent
172 In this example, the index for @samp{e} is @minus{}3, the index for
173 @samp{f} is @minus{}2, and the index for @samp{g} is @minus{}1.
174 Therefore, @samp{e} and @samp{f} are included, and @samp{g} is excluded.
175
176 When @code{nil} is used for @var{end}, it stands for the length of the
177 string. Thus,
178
179 @example
180 @group
181 (substring "abcdefg" -3 nil)
182 @result{} "efg"
183 @end group
184 @end example
185
186 Omitting the argument @var{end} is equivalent to specifying @code{nil}.
187 It follows that @code{(substring @var{string} 0)} returns a copy of all
188 of @var{string}.
189
190 @example
191 @group
192 (substring "abcdefg" 0)
193 @result{} "abcdefg"
194 @end group
195 @end example
196
197 @noindent
198 But we recommend @code{copy-sequence} for this purpose (@pxref{Sequence
199 Functions}).
200
201 If the characters copied from @var{string} have text properties, the
202 properties are copied into the new string also. @xref{Text Properties}.
203
204 @code{substring} also accepts a vector for the first argument.
205 For example:
206
207 @example
208 (substring [a b (c) "d"] 1 3)
209 @result{} [b (c)]
210 @end example
211
212 A @code{wrong-type-argument} error is signaled if @var{start} is not
213 an integer or if @var{end} is neither an integer nor @code{nil}. An
214 @code{args-out-of-range} error is signaled if @var{start} indicates a
215 character following @var{end}, or if either integer is out of range
216 for @var{string}.
217
218 Contrast this function with @code{buffer-substring} (@pxref{Buffer
219 Contents}), which returns a string containing a portion of the text in
220 the current buffer. The beginning of a string is at index 0, but the
221 beginning of a buffer is at index 1.
222 @end defun
223
224 @defun substring-no-properties string &optional start end
225 This works like @code{substring} but discards all text properties from
226 the value. Also, @var{start} may be omitted or @code{nil}, which is
227 equivalent to 0. Thus, @w{@code{(substring-no-properties
228 @var{string})}} returns a copy of @var{string}, with all text
229 properties removed.
230 @end defun
231
232 @defun concat &rest sequences
233 @cindex copying strings
234 @cindex concatenating strings
235 This function returns a new string consisting of the characters in the
236 arguments passed to it (along with their text properties, if any). The
237 arguments may be strings, lists of numbers, or vectors of numbers; they
238 are not themselves changed. If @code{concat} receives no arguments, it
239 returns an empty string.
240
241 @example
242 (concat "abc" "-def")
243 @result{} "abc-def"
244 (concat "abc" (list 120 121) [122])
245 @result{} "abcxyz"
246 ;; @r{@code{nil} is an empty sequence.}
247 (concat "abc" nil "-def")
248 @result{} "abc-def"
249 (concat "The " "quick brown " "fox.")
250 @result{} "The quick brown fox."
251 (concat)
252 @result{} ""
253 @end example
254
255 @noindent
256 This function always constructs a new string that is not @code{eq} to
257 any existing string, except when the result is the empty string (to
258 save space, Emacs makes only one empty multibyte string).
259
260 For information about other concatenation functions, see the
261 description of @code{mapconcat} in @ref{Mapping Functions},
262 @code{vconcat} in @ref{Vector Functions}, and @code{append} in @ref{Building
263 Lists}. For concatenating individual command-line arguments into a
264 string to be used as a shell command, see @ref{Shell Arguments,
265 combine-and-quote-strings}.
266 @end defun
267
268 @defun split-string string &optional separators omit-nulls
269 This function splits @var{string} into substrings based on the regular
270 expression @var{separators} (@pxref{Regular Expressions}). Each match
271 for @var{separators} defines a splitting point; the substrings between
272 splitting points are made into a list, which is returned.
273
274 If @var{omit-nulls} is @code{nil} (or omitted), the result contains
275 null strings whenever there are two consecutive matches for
276 @var{separators}, or a match is adjacent to the beginning or end of
277 @var{string}. If @var{omit-nulls} is @code{t}, these null strings are
278 omitted from the result.
279
280 If @var{separators} is @code{nil} (or omitted), the default is the
281 value of @code{split-string-default-separators}.
282
283 As a special case, when @var{separators} is @code{nil} (or omitted),
284 null strings are always omitted from the result. Thus:
285
286 @example
287 (split-string " two words ")
288 @result{} ("two" "words")
289 @end example
290
291 The result is not @code{("" "two" "words" "")}, which would rarely be
292 useful. If you need such a result, use an explicit value for
293 @var{separators}:
294
295 @example
296 (split-string " two words "
297 split-string-default-separators)
298 @result{} ("" "two" "words" "")
299 @end example
300
301 More examples:
302
303 @example
304 (split-string "Soup is good food" "o")
305 @result{} ("S" "up is g" "" "d f" "" "d")
306 (split-string "Soup is good food" "o" t)
307 @result{} ("S" "up is g" "d f" "d")
308 (split-string "Soup is good food" "o+")
309 @result{} ("S" "up is g" "d f" "d")
310 @end example
311
312 Empty matches do count, except that @code{split-string} will not look
313 for a final empty match when it already reached the end of the string
314 using a non-empty match or when @var{string} is empty:
315
316 @example
317 (split-string "aooob" "o*")
318 @result{} ("" "a" "" "b" "")
319 (split-string "ooaboo" "o*")
320 @result{} ("" "" "a" "b" "")
321 (split-string "" "")
322 @result{} ("")
323 @end example
324
325 However, when @var{separators} can match the empty string,
326 @var{omit-nulls} is usually @code{t}, so that the subtleties in the
327 three previous examples are rarely relevant:
328
329 @example
330 (split-string "Soup is good food" "o*" t)
331 @result{} ("S" "u" "p" " " "i" "s" " " "g" "d" " " "f" "d")
332 (split-string "Nice doggy!" "" t)
333 @result{} ("N" "i" "c" "e" " " "d" "o" "g" "g" "y" "!")
334 (split-string "" "" t)
335 @result{} nil
336 @end example
337
338 Somewhat odd, but predictable, behavior can occur for certain
339 ``non-greedy'' values of @var{separators} that can prefer empty
340 matches over non-empty matches. Again, such values rarely occur in
341 practice:
342
343 @example
344 (split-string "ooo" "o*" t)
345 @result{} nil
346 (split-string "ooo" "\\|o+" t)
347 @result{} ("o" "o" "o")
348 @end example
349
350 If you need to split a string into a list of individual command-line
351 arguments suitable for @code{call-process} or @code{start-process},
352 see @ref{Shell Arguments, split-string-and-unquote}.
353 @end defun
354
355 @defvar split-string-default-separators
356 The default value of @var{separators} for @code{split-string}. Its
357 usual value is @w{@code{"[ \f\t\n\r\v]+"}}.
358 @end defvar
359
360 @node Modifying Strings
361 @section Modifying Strings
362
363 The most basic way to alter the contents of an existing string is with
364 @code{aset} (@pxref{Array Functions}). @code{(aset @var{string}
365 @var{idx} @var{char})} stores @var{char} into @var{string} at index
366 @var{idx}. Each character occupies one or more bytes, and if @var{char}
367 needs a different number of bytes from the character already present at
368 that index, @code{aset} signals an error.
369
370 A more powerful function is @code{store-substring}:
371
372 @defun store-substring string idx obj
373 This function alters part of the contents of the string @var{string}, by
374 storing @var{obj} starting at index @var{idx}. The argument @var{obj}
375 may be either a character or a (smaller) string.
376
377 Since it is impossible to change the length of an existing string, it is
378 an error if @var{obj} doesn't fit within @var{string}'s actual length,
379 or if any new character requires a different number of bytes from the
380 character currently present at that point in @var{string}.
381 @end defun
382
383 To clear out a string that contained a password, use
384 @code{clear-string}:
385
386 @defun clear-string string
387 This makes @var{string} a unibyte string and clears its contents to
388 zeros. It may also change @var{string}'s length.
389 @end defun
390
391 @need 2000
392 @node Text Comparison
393 @section Comparison of Characters and Strings
394 @cindex string equality
395
396 @defun char-equal character1 character2
397 This function returns @code{t} if the arguments represent the same
398 character, @code{nil} otherwise. This function ignores differences
399 in case if @code{case-fold-search} is non-@code{nil}.
400
401 @example
402 (char-equal ?x ?x)
403 @result{} t
404 (let ((case-fold-search nil))
405 (char-equal ?x ?X))
406 @result{} nil
407 @end example
408 @end defun
409
410 @defun string= string1 string2
411 This function returns @code{t} if the characters of the two strings
412 match exactly. Symbols are also allowed as arguments, in which case
413 their print names are used.
414 Case is always significant, regardless of @code{case-fold-search}.
415
416 @example
417 (string= "abc" "abc")
418 @result{} t
419 (string= "abc" "ABC")
420 @result{} nil
421 (string= "ab" "ABC")
422 @result{} nil
423 @end example
424
425 The function @code{string=} ignores the text properties of the two
426 strings. When @code{equal} (@pxref{Equality Predicates}) compares two
427 strings, it uses @code{string=}.
428
429 For technical reasons, a unibyte and a multibyte string are
430 @code{equal} if and only if they contain the same sequence of
431 character codes and all these codes are either in the range 0 through
432 127 (@acronym{ASCII}) or 160 through 255 (@code{eight-bit-graphic}).
433 However, when a unibyte string is converted to a multibyte string, all
434 characters with codes in the range 160 through 255 are converted to
435 characters with higher codes, whereas @acronym{ASCII} characters
436 remain unchanged. Thus, a unibyte string and its conversion to
437 multibyte are only @code{equal} if the string is all @acronym{ASCII}.
438 Character codes 160 through 255 are not entirely proper in multibyte
439 text, even though they can occur. As a consequence, the situation
440 where a unibyte and a multibyte string are @code{equal} without both
441 being all @acronym{ASCII} is a technical oddity that very few Emacs
442 Lisp programmers ever get confronted with. @xref{Text
443 Representations}.
444 @end defun
445
446 @defun string-equal string1 string2
447 @code{string-equal} is another name for @code{string=}.
448 @end defun
449
450 @cindex lexical comparison
451 @defun string< string1 string2
452 @c (findex string< causes problems for permuted index!!)
453 This function compares two strings a character at a time. It
454 scans both the strings at the same time to find the first pair of corresponding
455 characters that do not match. If the lesser character of these two is
456 the character from @var{string1}, then @var{string1} is less, and this
457 function returns @code{t}. If the lesser character is the one from
458 @var{string2}, then @var{string1} is greater, and this function returns
459 @code{nil}. If the two strings match entirely, the value is @code{nil}.
460
461 Pairs of characters are compared according to their character codes.
462 Keep in mind that lower case letters have higher numeric values in the
463 @acronym{ASCII} character set than their upper case counterparts; digits and
464 many punctuation characters have a lower numeric value than upper case
465 letters. An @acronym{ASCII} character is less than any non-@acronym{ASCII}
466 character; a unibyte non-@acronym{ASCII} character is always less than any
467 multibyte non-@acronym{ASCII} character (@pxref{Text Representations}).
468
469 @example
470 @group
471 (string< "abc" "abd")
472 @result{} t
473 (string< "abd" "abc")
474 @result{} nil
475 (string< "123" "abc")
476 @result{} t
477 @end group
478 @end example
479
480 When the strings have different lengths, and they match up to the
481 length of @var{string1}, then the result is @code{t}. If they match up
482 to the length of @var{string2}, the result is @code{nil}. A string of
483 no characters is less than any other string.
484
485 @example
486 @group
487 (string< "" "abc")
488 @result{} t
489 (string< "ab" "abc")
490 @result{} t
491 (string< "abc" "")
492 @result{} nil
493 (string< "abc" "ab")
494 @result{} nil
495 (string< "" "")
496 @result{} nil
497 @end group
498 @end example
499
500 Symbols are also allowed as arguments, in which case their print names
501 are used.
502 @end defun
503
504 @defun string-lessp string1 string2
505 @code{string-lessp} is another name for @code{string<}.
506 @end defun
507
508 @defun compare-strings string1 start1 end1 string2 start2 end2 &optional ignore-case
509 This function compares the specified part of @var{string1} with the
510 specified part of @var{string2}. The specified part of @var{string1}
511 runs from index @var{start1} up to index @var{end1} (@code{nil} means
512 the end of the string). The specified part of @var{string2} runs from
513 index @var{start2} up to index @var{end2} (@code{nil} means the end of
514 the string).
515
516 The strings are both converted to multibyte for the comparison
517 (@pxref{Text Representations}) so that a unibyte string and its
518 conversion to multibyte are always regarded as equal. If
519 @var{ignore-case} is non-@code{nil}, then case is ignored, so that
520 upper case letters can be equal to lower case letters.
521
522 If the specified portions of the two strings match, the value is
523 @code{t}. Otherwise, the value is an integer which indicates how many
524 leading characters agree, and which string is less. Its absolute value
525 is one plus the number of characters that agree at the beginning of the
526 two strings. The sign is negative if @var{string1} (or its specified
527 portion) is less.
528 @end defun
529
530 @defun assoc-string key alist &optional case-fold
531 This function works like @code{assoc}, except that @var{key} must be a
532 string or symbol, and comparison is done using @code{compare-strings}.
533 Symbols are converted to strings before testing.
534 If @var{case-fold} is non-@code{nil}, it ignores case differences.
535 Unlike @code{assoc}, this function can also match elements of the alist
536 that are strings or symbols rather than conses. In particular, @var{alist} can
537 be a list of strings or symbols rather than an actual alist.
538 @xref{Association Lists}.
539 @end defun
540
541 See also the function @code{compare-buffer-substrings} in
542 @ref{Comparing Text}, for a way to compare text in buffers. The
543 function @code{string-match}, which matches a regular expression
544 against a string, can be used for a kind of string comparison; see
545 @ref{Regexp Search}.
546
547 @node String Conversion
548 @comment node-name, next, previous, up
549 @section Conversion of Characters and Strings
550 @cindex conversion of strings
551
552 This section describes functions for converting between characters,
553 strings and integers. @code{format} (@pxref{Formatting Strings}) and
554 @code{prin1-to-string} (@pxref{Output Functions}) can also convert
555 Lisp objects into strings. @code{read-from-string} (@pxref{Input
556 Functions}) can ``convert'' a string representation of a Lisp object
557 into an object. The functions @code{string-to-multibyte} and
558 @code{string-to-unibyte} convert the text representation of a string
559 (@pxref{Converting Representations}).
560
561 @xref{Documentation}, for functions that produce textual descriptions
562 of text characters and general input events
563 (@code{single-key-description} and @code{text-char-description}). These
564 are used primarily for making help messages.
565
566 @defun number-to-string number
567 @cindex integer to string
568 @cindex integer to decimal
569 This function returns a string consisting of the printed base-ten
570 representation of @var{number}, which may be an integer or a floating
571 point number. The returned value starts with a minus sign if the argument is
572 negative.
573
574 @example
575 (number-to-string 256)
576 @result{} "256"
577 @group
578 (number-to-string -23)
579 @result{} "-23"
580 @end group
581 (number-to-string -23.5)
582 @result{} "-23.5"
583 @end example
584
585 @cindex int-to-string
586 @code{int-to-string} is a semi-obsolete alias for this function.
587
588 See also the function @code{format} in @ref{Formatting Strings}.
589 @end defun
590
591 @defun string-to-number string &optional base
592 @cindex string to number
593 This function returns the numeric value of the characters in
594 @var{string}. If @var{base} is non-@code{nil}, it must be an integer
595 between 2 and 16 (inclusive), and integers are converted in that base.
596 If @var{base} is @code{nil}, then base ten is used. Floating point
597 conversion only works in base ten; we have not implemented other
598 radices for floating point numbers, because that would be much more
599 work and does not seem useful. If @var{string} looks like an integer
600 but its value is too large to fit into a Lisp integer,
601 @code{string-to-number} returns a floating point result.
602
603 The parsing skips spaces and tabs at the beginning of @var{string},
604 then reads as much of @var{string} as it can interpret as a number in
605 the given base. (On some systems it ignores other whitespace at the
606 beginning, not just spaces and tabs.) If the first character after
607 the ignored whitespace is neither a digit in the given base, nor a
608 plus or minus sign, nor the leading dot of a floating point number,
609 this function returns 0.
610
611 @example
612 (string-to-number "256")
613 @result{} 256
614 (string-to-number "25 is a perfect square.")
615 @result{} 25
616 (string-to-number "X256")
617 @result{} 0
618 (string-to-number "-4.5")
619 @result{} -4.5
620 (string-to-number "1e5")
621 @result{} 100000.0
622 @end example
623
624 @findex string-to-int
625 @code{string-to-int} is an obsolete alias for this function.
626 @end defun
627
628 @defun char-to-string character
629 @cindex character to string
630 This function returns a new string containing one character,
631 @var{character}. This function is semi-obsolete because the function
632 @code{string} is more general. @xref{Creating Strings}.
633 @end defun
634
635 @defun string-to-char string
636 This function returns the first character in @var{string}. This
637 mostly identical to @code{(aref string 0)}, except that it returns 0
638 if the string is empty. (The value is also 0 when the first character
639 of @var{string} is the null character, @acronym{ASCII} code 0.) This
640 function may be eliminated in the future if it does not seem useful
641 enough to retain.
642 @end defun
643
644 Here are some other functions that can convert to or from a string:
645
646 @table @code
647 @item concat
648 This function converts a vector or a list into a string.
649 @xref{Creating Strings}.
650
651 @item vconcat
652 This function converts a string into a vector. @xref{Vector
653 Functions}.
654
655 @item append
656 This function converts a string into a list. @xref{Building Lists}.
657
658 @item byte-to-string
659 This function converts a byte of character data into a unibyte string.
660 @xref{Converting Representations}.
661 @end table
662
663 @node Formatting Strings
664 @comment node-name, next, previous, up
665 @section Formatting Strings
666 @cindex formatting strings
667 @cindex strings, formatting them
668
669 @dfn{Formatting} means constructing a string by substituting
670 computed values at various places in a constant string. This constant
671 string controls how the other values are printed, as well as where
672 they appear; it is called a @dfn{format string}.
673
674 Formatting is often useful for computing messages to be displayed. In
675 fact, the functions @code{message} and @code{error} provide the same
676 formatting feature described here; they differ from @code{format} only
677 in how they use the result of formatting.
678
679 @defun format string &rest objects
680 This function returns a new string that is made by copying
681 @var{string} and then replacing any format specification
682 in the copy with encodings of the corresponding @var{objects}. The
683 arguments @var{objects} are the computed values to be formatted.
684
685 The characters in @var{string}, other than the format specifications,
686 are copied directly into the output, including their text properties,
687 if any.
688 @end defun
689
690 @cindex @samp{%} in format
691 @cindex format specification
692 A format specification is a sequence of characters beginning with a
693 @samp{%}. Thus, if there is a @samp{%d} in @var{string}, the
694 @code{format} function replaces it with the printed representation of
695 one of the values to be formatted (one of the arguments @var{objects}).
696 For example:
697
698 @example
699 @group
700 (format "The value of fill-column is %d." fill-column)
701 @result{} "The value of fill-column is 72."
702 @end group
703 @end example
704
705 Since @code{format} interprets @samp{%} characters as format
706 specifications, you should @emph{never} pass an arbitrary string as
707 the first argument. This is particularly true when the string is
708 generated by some Lisp code. Unless the string is @emph{known} to
709 never include any @samp{%} characters, pass @code{"%s"}, described
710 below, as the first argument, and the string as the second, like this:
711
712 @example
713 (format "%s" @var{arbitrary-string})
714 @end example
715
716 If @var{string} contains more than one format specification, the
717 format specifications correspond to successive values from
718 @var{objects}. Thus, the first format specification in @var{string}
719 uses the first such value, the second format specification uses the
720 second such value, and so on. Any extra format specifications (those
721 for which there are no corresponding values) cause an error. Any
722 extra values to be formatted are ignored.
723
724 Certain format specifications require values of particular types. If
725 you supply a value that doesn't fit the requirements, an error is
726 signaled.
727
728 Here is a table of valid format specifications:
729
730 @table @samp
731 @item %s
732 Replace the specification with the printed representation of the object,
733 made without quoting (that is, using @code{princ}, not
734 @code{prin1}---@pxref{Output Functions}). Thus, strings are represented
735 by their contents alone, with no @samp{"} characters, and symbols appear
736 without @samp{\} characters.
737
738 If the object is a string, its text properties are
739 copied into the output. The text properties of the @samp{%s} itself
740 are also copied, but those of the object take priority.
741
742 @item %S
743 Replace the specification with the printed representation of the object,
744 made with quoting (that is, using @code{prin1}---@pxref{Output
745 Functions}). Thus, strings are enclosed in @samp{"} characters, and
746 @samp{\} characters appear where necessary before special characters.
747
748 @item %o
749 @cindex integer to octal
750 Replace the specification with the base-eight representation of an
751 integer.
752
753 @item %d
754 Replace the specification with the base-ten representation of an
755 integer.
756
757 @item %x
758 @itemx %X
759 @cindex integer to hexadecimal
760 Replace the specification with the base-sixteen representation of an
761 integer. @samp{%x} uses lower case and @samp{%X} uses upper case.
762
763 @item %c
764 Replace the specification with the character which is the value given.
765
766 @item %e
767 Replace the specification with the exponential notation for a floating
768 point number.
769
770 @item %f
771 Replace the specification with the decimal-point notation for a floating
772 point number.
773
774 @item %g
775 Replace the specification with notation for a floating point number,
776 using either exponential notation or decimal-point notation, whichever
777 is shorter.
778
779 @item %%
780 Replace the specification with a single @samp{%}. This format
781 specification is unusual in that it does not use a value. For example,
782 @code{(format "%% %d" 30)} returns @code{"% 30"}.
783 @end table
784
785 Any other format character results in an @samp{Invalid format
786 operation} error.
787
788 Here are several examples:
789
790 @example
791 @group
792 (format "The name of this buffer is %s." (buffer-name))
793 @result{} "The name of this buffer is strings.texi."
794
795 (format "The buffer object prints as %s." (current-buffer))
796 @result{} "The buffer object prints as strings.texi."
797
798 (format "The octal value of %d is %o,
799 and the hex value is %x." 18 18 18)
800 @result{} "The octal value of 18 is 22,
801 and the hex value is 12."
802 @end group
803 @end example
804
805 @cindex field width
806 @cindex padding
807 A specification can have a @dfn{width}, which is a decimal number
808 between the @samp{%} and the specification character. If the printed
809 representation of the object contains fewer characters than this
810 width, @code{format} extends it with padding. The width specifier is
811 ignored for the @samp{%%} specification. Any padding introduced by
812 the width specifier normally consists of spaces inserted on the left:
813
814 @example
815 (format "%5d is padded on the left with spaces" 123)
816 @result{} " 123 is padded on the left with spaces"
817 @end example
818
819 @noindent
820 If the width is too small, @code{format} does not truncate the
821 object's printed representation. Thus, you can use a width to specify
822 a minimum spacing between columns with no risk of losing information.
823 In the following three examples, @samp{%7s} specifies a minimum width
824 of 7. In the first case, the string inserted in place of @samp{%7s}
825 has only 3 letters, and needs 4 blank spaces as padding. In the
826 second case, the string @code{"specification"} is 13 letters wide but
827 is not truncated.
828
829 @example
830 @group
831 (format "The word `%7s' has %d letters in it."
832 "foo" (length "foo"))
833 @result{} "The word ` foo' has 3 letters in it."
834 (format "The word `%7s' has %d letters in it."
835 "specification" (length "specification"))
836 @result{} "The word `specification' has 13 letters in it."
837 @end group
838 @end example
839
840 @cindex flags in format specifications
841 Immediately after the @samp{%} and before the optional width
842 specifier, you can also put certain @dfn{flag characters}.
843
844 The flag @samp{+} inserts a plus sign before a positive number, so
845 that it always has a sign. A space character as flag inserts a space
846 before a positive number. (Otherwise, positive numbers start with the
847 first digit.) These flags are useful for ensuring that positive
848 numbers and negative numbers use the same number of columns. They are
849 ignored except for @samp{%d}, @samp{%e}, @samp{%f}, @samp{%g}, and if
850 both flags are used, @samp{+} takes precedence.
851
852 The flag @samp{#} specifies an ``alternate form'' which depends on
853 the format in use. For @samp{%o}, it ensures that the result begins
854 with a @samp{0}. For @samp{%x} and @samp{%X}, it prefixes the result
855 with @samp{0x} or @samp{0X}. For @samp{%e}, @samp{%f}, and @samp{%g},
856 the @samp{#} flag means include a decimal point even if the precision
857 is zero.
858
859 The flag @samp{0} ensures that the padding consists of @samp{0}
860 characters instead of spaces. This flag is ignored for non-numerical
861 specification characters like @samp{%s}, @samp{%S} and @samp{%c}.
862 These specification characters accept the @samp{0} flag, but still pad
863 with @emph{spaces}.
864
865 The flag @samp{-} causes the padding inserted by the width
866 specifier, if any, to be inserted on the right rather than the left.
867 If both @samp{-} and @samp{0} are present, the @samp{0} flag is
868 ignored.
869
870 @example
871 @group
872 (format "%06d is padded on the left with zeros" 123)
873 @result{} "000123 is padded on the left with zeros"
874
875 (format "%-6d is padded on the right" 123)
876 @result{} "123 is padded on the right"
877
878 (format "The word `%-7s' actually has %d letters in it."
879 "foo" (length "foo"))
880 @result{} "The word `foo ' actually has 3 letters in it."
881 @end group
882 @end example
883
884 @cindex precision in format specifications
885 All the specification characters allow an optional @dfn{precision}
886 before the character (after the width, if present). The precision is
887 a decimal-point @samp{.} followed by a digit-string. For the
888 floating-point specifications (@samp{%e}, @samp{%f}, @samp{%g}), the
889 precision specifies how many decimal places to show; if zero, the
890 decimal-point itself is also omitted. For @samp{%s} and @samp{%S},
891 the precision truncates the string to the given width, so @samp{%.3s}
892 shows only the first three characters of the representation for
893 @var{object}. Precision has no effect for other specification
894 characters.
895
896 @node Case Conversion
897 @comment node-name, next, previous, up
898 @section Case Conversion in Lisp
899 @cindex upper case
900 @cindex lower case
901 @cindex character case
902 @cindex case conversion in Lisp
903
904 The character case functions change the case of single characters or
905 of the contents of strings. The functions normally convert only
906 alphabetic characters (the letters @samp{A} through @samp{Z} and
907 @samp{a} through @samp{z}, as well as non-@acronym{ASCII} letters); other
908 characters are not altered. You can specify a different case
909 conversion mapping by specifying a case table (@pxref{Case Tables}).
910
911 These functions do not modify the strings that are passed to them as
912 arguments.
913
914 The examples below use the characters @samp{X} and @samp{x} which have
915 @acronym{ASCII} codes 88 and 120 respectively.
916
917 @defun downcase string-or-char
918 This function converts @var{string-or-char}, which should be either a
919 character or a string, to lower case.
920
921 When @var{string-or-char} is a string, this function returns a new
922 string in which each letter in the argument that is upper case is
923 converted to lower case. When @var{string-or-char} is a character,
924 this function returns the corresponding lower case character (an
925 integer); if the original character is lower case, or is not a letter,
926 the return value is equal to the original character.
927
928 @example
929 (downcase "The cat in the hat")
930 @result{} "the cat in the hat"
931
932 (downcase ?X)
933 @result{} 120
934 @end example
935 @end defun
936
937 @defun upcase string-or-char
938 This function converts @var{string-or-char}, which should be either a
939 character or a string, to upper case.
940
941 When @var{string-or-char} is a string, this function returns a new
942 string in which each letter in the argument that is lower case is
943 converted to upper case. When @var{string-or-char} is a character,
944 this function returns the corresponding upper case character (an
945 integer); if the original character is upper case, or is not a letter,
946 the return value is equal to the original character.
947
948 @example
949 (upcase "The cat in the hat")
950 @result{} "THE CAT IN THE HAT"
951
952 (upcase ?x)
953 @result{} 88
954 @end example
955 @end defun
956
957 @defun capitalize string-or-char
958 @cindex capitalization
959 This function capitalizes strings or characters. If
960 @var{string-or-char} is a string, the function returns a new string
961 whose contents are a copy of @var{string-or-char} in which each word
962 has been capitalized. This means that the first character of each
963 word is converted to upper case, and the rest are converted to lower
964 case.
965
966 The definition of a word is any sequence of consecutive characters that
967 are assigned to the word constituent syntax class in the current syntax
968 table (@pxref{Syntax Class Table}).
969
970 When @var{string-or-char} is a character, this function does the same
971 thing as @code{upcase}.
972
973 @example
974 @group
975 (capitalize "The cat in the hat")
976 @result{} "The Cat In The Hat"
977 @end group
978
979 @group
980 (capitalize "THE 77TH-HATTED CAT")
981 @result{} "The 77th-Hatted Cat"
982 @end group
983
984 @group
985 (capitalize ?x)
986 @result{} 88
987 @end group
988 @end example
989 @end defun
990
991 @defun upcase-initials string-or-char
992 If @var{string-or-char} is a string, this function capitalizes the
993 initials of the words in @var{string-or-char}, without altering any
994 letters other than the initials. It returns a new string whose
995 contents are a copy of @var{string-or-char}, in which each word has
996 had its initial letter converted to upper case.
997
998 The definition of a word is any sequence of consecutive characters that
999 are assigned to the word constituent syntax class in the current syntax
1000 table (@pxref{Syntax Class Table}).
1001
1002 When the argument to @code{upcase-initials} is a character,
1003 @code{upcase-initials} has the same result as @code{upcase}.
1004
1005 @example
1006 @group
1007 (upcase-initials "The CAT in the hAt")
1008 @result{} "The CAT In The HAt"
1009 @end group
1010 @end example
1011 @end defun
1012
1013 @xref{Text Comparison}, for functions that compare strings; some of
1014 them ignore case differences, or can optionally ignore case differences.
1015
1016 @node Case Tables
1017 @section The Case Table
1018
1019 You can customize case conversion by installing a special @dfn{case
1020 table}. A case table specifies the mapping between upper case and lower
1021 case letters. It affects both the case conversion functions for Lisp
1022 objects (see the previous section) and those that apply to text in the
1023 buffer (@pxref{Case Changes}). Each buffer has a case table; there is
1024 also a standard case table which is used to initialize the case table
1025 of new buffers.
1026
1027 A case table is a char-table (@pxref{Char-Tables}) whose subtype is
1028 @code{case-table}. This char-table maps each character into the
1029 corresponding lower case character. It has three extra slots, which
1030 hold related tables:
1031
1032 @table @var
1033 @item upcase
1034 The upcase table maps each character into the corresponding upper
1035 case character.
1036 @item canonicalize
1037 The canonicalize table maps all of a set of case-related characters
1038 into a particular member of that set.
1039 @item equivalences
1040 The equivalences table maps each one of a set of case-related characters
1041 into the next character in that set.
1042 @end table
1043
1044 In simple cases, all you need to specify is the mapping to lower-case;
1045 the three related tables will be calculated automatically from that one.
1046
1047 For some languages, upper and lower case letters are not in one-to-one
1048 correspondence. There may be two different lower case letters with the
1049 same upper case equivalent. In these cases, you need to specify the
1050 maps for both lower case and upper case.
1051
1052 The extra table @var{canonicalize} maps each character to a canonical
1053 equivalent; any two characters that are related by case-conversion have
1054 the same canonical equivalent character. For example, since @samp{a}
1055 and @samp{A} are related by case-conversion, they should have the same
1056 canonical equivalent character (which should be either @samp{a} for both
1057 of them, or @samp{A} for both of them).
1058
1059 The extra table @var{equivalences} is a map that cyclically permutes
1060 each equivalence class (of characters with the same canonical
1061 equivalent). (For ordinary @acronym{ASCII}, this would map @samp{a} into
1062 @samp{A} and @samp{A} into @samp{a}, and likewise for each set of
1063 equivalent characters.)
1064
1065 When constructing a case table, you can provide @code{nil} for
1066 @var{canonicalize}; then Emacs fills in this slot from the lower case
1067 and upper case mappings. You can also provide @code{nil} for
1068 @var{equivalences}; then Emacs fills in this slot from
1069 @var{canonicalize}. In a case table that is actually in use, those
1070 components are non-@code{nil}. Do not try to specify
1071 @var{equivalences} without also specifying @var{canonicalize}.
1072
1073 Here are the functions for working with case tables:
1074
1075 @defun case-table-p object
1076 This predicate returns non-@code{nil} if @var{object} is a valid case
1077 table.
1078 @end defun
1079
1080 @defun set-standard-case-table table
1081 This function makes @var{table} the standard case table, so that it will
1082 be used in any buffers created subsequently.
1083 @end defun
1084
1085 @defun standard-case-table
1086 This returns the standard case table.
1087 @end defun
1088
1089 @defun current-case-table
1090 This function returns the current buffer's case table.
1091 @end defun
1092
1093 @defun set-case-table table
1094 This sets the current buffer's case table to @var{table}.
1095 @end defun
1096
1097 @defmac with-case-table table body@dots{}
1098 The @code{with-case-table} macro saves the current case table, makes
1099 @var{table} the current case table, evaluates the @var{body} forms,
1100 and finally restores the case table. The return value is the value of
1101 the last form in @var{body}. The case table is restored even in case
1102 of an abnormal exit via @code{throw} or error (@pxref{Nonlocal
1103 Exits}).
1104 @end defmac
1105
1106 Some language environments modify the case conversions of
1107 @acronym{ASCII} characters; for example, in the Turkish language
1108 environment, the @acronym{ASCII} character @samp{I} is downcased into
1109 a Turkish ``dotless i''. This can interfere with code that requires
1110 ordinary ASCII case conversion, such as implementations of
1111 @acronym{ASCII}-based network protocols. In that case, use the
1112 @code{with-case-table} macro with the variable @var{ascii-case-table},
1113 which stores the unmodified case table for the @acronym{ASCII}
1114 character set.
1115
1116 @defvar ascii-case-table
1117 The case table for the @acronym{ASCII} character set. This should not be
1118 modified by any language environment settings.
1119 @end defvar
1120
1121 The following three functions are convenient subroutines for packages
1122 that define non-@acronym{ASCII} character sets. They modify the specified
1123 case table @var{case-table}; they also modify the standard syntax table.
1124 @xref{Syntax Tables}. Normally you would use these functions to change
1125 the standard case table.
1126
1127 @defun set-case-syntax-pair uc lc case-table
1128 This function specifies a pair of corresponding letters, one upper case
1129 and one lower case.
1130 @end defun
1131
1132 @defun set-case-syntax-delims l r case-table
1133 This function makes characters @var{l} and @var{r} a matching pair of
1134 case-invariant delimiters.
1135 @end defun
1136
1137 @defun set-case-syntax char syntax case-table
1138 This function makes @var{char} case-invariant, with syntax
1139 @var{syntax}.
1140 @end defun
1141
1142 @deffn Command describe-buffer-case-table
1143 This command displays a description of the contents of the current
1144 buffer's case table.
1145 @end deffn