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I need something that will find a word enclosed in two "%" signs, and replace the first % with a [ and the second % sign with a ].

So in the string "This is dummy text %with% percent signs" It will then make it "This is dummy text [with] percent signs"

EDIT: Would there be a way to search and replace two different things in the same regex? Like I need to replace %blah% with [blah] but also %~dp1 with [~dp1] the %~dp1 call is in the format %~(could be some letters here)(always ends with a single digit thats how you know the call is over) sorry this is the last thing :)

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what should be the output of this string '% % %' ? – mcabral Jun 27 '11 at 19:26

3 Answers 3

up vote 5 down vote accepted

I would match the whole substring enclosed by the special characters, and replace it with a string containing the same inner characters but with brackets instead of percent signs. Make sure you use nongreedy matching if the input can have many of these substrings:

Regex.Replace("This is dummy text %with% percent signs", "%(.*?)%", @"[$1]");
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Since OP specified a "word" between two % he might also replace .*? with \S+ (one or more non-whitespace chars) ie "%(\S+)%" – The Evil Greebo Jun 27 '11 at 19:30
That code won't compile, as \[ is not a recognized escape sequence in c# string. – svick Jun 27 '11 at 19:30
@svick - You are correct; I added the @ changing it to a verbatim string, which should properly escape it. [ is still valid in regex; it denotes a literal opening square bracket, instead of a character-grouping construct. – KeithS Jun 27 '11 at 19:34
@KeithS, yeah, this will compile, but will produce strings with literal \[ (and \]) in them. – svick Jun 27 '11 at 19:36
In the replacement string, [ and ] have no special meaning, so they don't need to be escaped. "[$1]" (or @"[$1]") will work just fine. – Alan Moore Jun 27 '11 at 19:43

Try this:

Regex.Replace(s, "%([^%]+)%", "[$1]")
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Use a MatchEvaluator to provide the replacement value. Alternate with (i++ % 2)

int i = 0;
Regex.Replace(s, "%", m => (i++ % 2) == 0 ? "[" : "]");
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