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I want to do a string substitution where if I find a string between two terms I replace it, so when I have a string like:

"123 pre 456 post"

I can get:

"123 pre 789 post"

I can do this by doing something like:

string.sub(/(pre\s+)\S+(\s+post)/, "\\1789\\2")

However, I'd like to avoid using the two captures if possible. In fact, I'd like to use a regular expression like this instead: /pre\s+(\S+)\s+post/ and get the range of the capture and then replace it. Is there a way to do that (using the standard Ruby libraries)?

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What about look-ahead and look behind pattern? –  halfelf Dec 20 '12 at 10:57
    
@halfelf I'm not familiar with that pattern, please say more. –  ThomasW Dec 20 '12 at 11:02
    
@ThomasW xdazz's answer is the look-ahead and look-behind patterns. Unfortunately they don't work in Ruby 1.8.7 (I'm not aware which version are you using). –  Sony Santos Dec 20 '12 at 11:19
    
I'm using Ruby 1.8.7 at the time being, but if an elegant solution to this problem could be found using a newer version I might be compelled to switch. –  ThomasW Dec 20 '12 at 11:23

2 Answers 2

up vote 2 down vote accepted

The []= operator does this, although it modifies the string in place

s = "123 pre 456 post"
s[/pre\s+(\S+)\s+post/] = '789'

replaces the entire rexep match, and

s = "123 pre 456 post"
s[/pre\s+(\S+)\s+post/, 1] = '789'

replaces the specified capture groups (you can do this with named capture groups too).

Should work on 1.8.7 (although no named capture groups there I think) and 1.9

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Thanks. Since this works with Ruby 1.8.7 I'm going to go with it as the answer. –  ThomasW Dec 21 '12 at 0:26

You could do like this:

"123 pre 456 post".sub(/(?<=pre)\s+\S+\s+(?=post)/, ' 789 ')
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I'd include the \s+ in the pre and post groups, only to approach to the OP's problem (maybe he wants to maintain the number of spaces). –  Sony Santos Dec 20 '12 at 11:24

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