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Is there a way to transform the String

"m1, m2, m3"

to the following

"m1/build, m2/build, m3/build"

only by using String.replaceAll(regex, replacement) method?

So far this is my best attempt:

System.out.println("m1, m2, m3".replaceAll("([^,]*)", "$1/build"));
>>> m1/build/build, m2/build/build, m3/build/build

As you can see the output is incorrect. However, using the same regexp in Linux's sed command gives correct output:

echo 'm1, m2, m3' | sed -e 's%\([^,]*\)%\1/build%g'
>>> m1/build, m2/build, m3/build
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2 Answers

up vote 4 down vote accepted

([^,]*) can match the empty string, it can even match between two spaces. Try ([^,]+) or (\w+).

Another minor note - you can use $0 to refer to the whole matched string, avoiding the captured group:

System.out.println("m1, m2, m3".replaceAll("\\w+", "$0/build"));
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+1 Yep, that appears to be the problem: ideone.com/omXQF –  mellamokb Jul 13 '12 at 20:43
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If you look at the problem from the other end (quite literally!) you get an expression that looks for terminators, rather than for the content. This expression worked a lot better:

System.out.println("m1, m2, m3".replaceAll("(\\s*(,|$))", "/build$1"));

Here is a link to this program on ideone.

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That's the way I was thinking of doing it. But don't you have /build and $1 swapped? –  BlackVegetable Jul 13 '12 at 20:42
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@BlackVegetable Since I'm matching the terminator, not the content, the $1 belongs at the end. –  dasblinkenlight Jul 13 '12 at 20:43
    
Huh, good to know! Thank you for clarifying. +1 –  BlackVegetable Jul 13 '12 at 20:47
1  
Nice. However this solution will not work if there are spaces between commas. E.g. for input 'm1 , m2, m3 ' the output would be incorrect: 'm1 /build, m2 /build,m3 /build'. The second answer which uses (\w+) as a regexp can cope with this situation. –  miso Jul 13 '12 at 20:51
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@miso Not that it mattered much, but the "space before comma" was easy to address (please see the edit). I liked the \\w+ solution better, though :) –  dasblinkenlight Jul 13 '12 at 21:01
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