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I'm looking for an equivalent of replace-regexp-in-string that just uses literal strings, no regular expressions.

(replace-regexp-in-string "." "bar" "foo.buzz") => "barbarbarbarbarbarbarbar"

But I want

(replace-in-string "." "bar" "foo.buzz") => "foobarbuzz"

I tried various replace-* functions but can't figure it out.

Edit

In return for the elaborate answers I decided to benchmark them (yea, I know all benchmarks are wrong, but it's still interesting).

The output of benchmark-run is (time, # garbage collections, GC time):

(benchmark-run 10000
  (replace-regexp-in-string "." "bar" "foo.buzz"))

  => (0.5530160000000001 7 0.4121459999999999)

(benchmark-run 10000
  (haxe-replace-string "." "bar" "foo.buzz"))

  => (5.301392 68 3.851943000000009)

(benchmark-run 10000
  (replace-string-in-string "." "bar" "foo.buzz"))

  => (1.429293 5 0.29774799999999857)

replace-regexp-in-string with a quoted regexp wins. Temporary buffers do remarkably well.

Edit 2

Now with compilation! Had to do 10x more iteration:

(benchmark-run 100000
  (haxe-replace-string "." "bar" "foo.buzz"))

  => (0.8736970000000001 14 0.47306700000000035)

(benchmark-run 100000
  (replace-in-string "." "bar" "foo.buzz"))

  => (1.25983 29 0.9721819999999983)

(benchmark-run 100000
  (replace-string-in-string "." "bar" "foo.buzz"))

  => (11.877136 86 3.1208540000000013)

haxe-replace-string is looking good

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1  
The time for haxe-replace-string is probably so bad because you didn't byte-compile it? loop macro really makes compiling a must, it's very slow otherwise. –  user797257 Jun 27 '13 at 6:17
    
updated with some more numbers –  spike Jun 27 '13 at 16:12

3 Answers 3

up vote 10 down vote accepted

Try this:

(defun replace-in-string (what with in)
  (replace-regexp-in-string (regexp-quote what) with in))
share|improve this answer
3  
The second to last paren should be moved outside, but otherwise yes this works. There's no builtin for this? Seems like such a weird thing to be left out. –  spike Jun 26 '13 at 16:49
    
@spike I read somewhere that the suggested way is to create a temporary buffer, copy the string there and to replace-string on the buffer. It would be interesting if that way it be any faster. –  user797257 Jun 26 '13 at 17:54
1  
@spike - fixed. –  Trey Jackson Jun 26 '13 at 21:08

s.el string manipulation library has s-replace function:

(s-replace "." "bar" "foo.buzz") ;; => "foobarbuzz"

I recommend installing s.el from Emacs package manager, if you work with strings in your Elisp.

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I'd not hope for this to be faster:

(defun haxe-replace-string (string string-a string-b)
  "Because there's no function in eLisp to do this."
  (loop for i from 0 upto
        (- (length string) (length string-a))
        for c = (aref string i)
        with alen = (length string-a)
        with result = nil
        with last = 0
        do (loop for j from i below (+ i alen)
                 do (unless
                        (char-equal
                         (aref string-a (- j i))
                         (aref string j))
                      (return))
                 finally
                 (setq result
                       (cons (substring string last (- j alen)) result)
                       i (1- j) last j))
        finally
        (return
         (if result 
             (mapconcat
              #'identity
              (reverse (cons (substring string last) result)) string-b)
           string))))

Becasue replace-regexp-in-string is a native function, but you never know... Anyways, I wrote this some time ago for some reason, so, if you fill like comparing the performance - you are welcome to try :)

Another idea, using temporary buffer:

(defun replace-string-in-string (what with in)
  (with-temp-buffer
    (insert in)
    (beginning-of-buffer)
    (while (search-forward what nil t)
      (replace-match with nil t))
    (buffer-string)))
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