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in my bash script I use a regexp to match a string of variable assignment, for instance:

  1. Var = Value
  2. var = Value;
  3. Var=Value
  4. Var=Value;
  5. Var Value

the regexp i developed: \s*${varName}\s*\={0,1}\s*.*\s*;{0,1}

this regexp can match every instances above but also another instance that I don't want, which is VarValue

I cannot think of a way to make my regexp to not match the VarValue instance.

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The rationale of the answers (and of an answer I was thinking of posting) is that you take match the "var" particle, case insensitive, then at least one whitespace or equal sign, then another word. There are escaped sequences (or POSIX classes) for detecting "words" and word boundaries. –  heltonbiker Jun 15 '12 at 20:58
    
Bash regex uses ERE, which \s wouldn't work with. Are you using grep -P in bash instead of bash's builtin regex? –  jordanm Jun 15 '12 at 22:16
    
@jordanm yes, I use egrep to match the line. –  jdA Jun 16 '12 at 15:28
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2 Answers

up vote 2 down vote accepted

Modifying yours:

\s*${varName}(\s?[\s\=]\s?).+\s*;{0,1}
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You could also replace the final {0,1} with a ?. –  Dennis Williamson Jun 15 '12 at 21:59
    
@Elias I use the regexp with egrep but it didn't work... –  jdA Jun 16 '12 at 18:16
    
@Elias ` ${varName}( *[ \=] *). *;{0,1} *` this work, replacing \s with just a space –  jdA Jun 16 '12 at 18:50
    
@user990106 the \s was created to matches any space character, like tab, white space, new line... but if you always get ` `, it works! –  Elias Jun 17 '12 at 22:37
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\s*{varName}(?:\s*=\s*|\s+)(\w+)

I didn't modify your regex since it seemed quite complicated for the job, but this one will match all cases listed above while not matching VarValue. Your data will be in group 1.

Play with the regex here.

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