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I have a string like this:

my $string = 'Respect,13,201,7,0,0,2,3.70,4,1.01,Responsibility,13,177,29,1,1,2,3.58,4,1.04,Flexibility,13,180,27,0,0,3,3.59,4,1.05,Collaboration,13,194,13,0,0,3,3.65,4,1.04,Reflection,13,187,19,1,0,3,3.62,4,1.05,Commitmentto Learning,13,183,24,0,0,3,3.61,4,1.05,Beliefin Educator Efficacy,13,177,13,0,0,20,3.35,4,1.42,SocialIntelligence,13,184,22,1,0,3,3.61,4,1.05' ;

How can I write a pattern to be used with s/// to replace each comma (,) just before the \w+ (e.g., Responsibility, Flexibility, Collaboration ... ) with an ampersand (&)'?

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Do you to replace by $ (as said in title) or & (as said in text)? –  M42 Mar 13 '12 at 9:46
    
I assume there's an implied "...but not replace commas in front of...". Why don't you make it official? –  TLP Mar 13 '12 at 12:45
    
I'm confused. All commas are just before \w+. –  ikegami Mar 13 '12 at 17:05

2 Answers 2

You can use a lookahead assertion, like this:

s/,(?=[a-z]+)/&/gi

You should replace the [a-z]+ part with a more specific pattern based on your input.

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Hey thanks, It worked like wonder. –  Ash_and_Perl Mar 13 '12 at 9:27
    
In sed or another tool without lookahead assertions you would just capture the lookahead and put it back: sed -e 's/,\([a-zA-Z]\)/\&\1/g'. The & has to be escaped because as a substitution it inserts the entire matched string. –  Ben Jackson Mar 13 '12 at 17:22

To replace all commas followed by \w+ (as you asked), I recommend

s/,(?=\w)/&/g

Since all commas are followed by \w+, the above can be simplified to

s/,/&/g

If your actual intent is to only replace the commas that are followed by letters, you want

s/,(?=\pL)/&/g
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