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Please have a look at this simple bash script:

#!/bin/bash
if [[ $1 =~ a* ]]; then
 echo "match"
fi

seems to always print "match" regardless what has been provided as the first argument. (tested on bash 3.2 and 4.x)

Question:
What I am doing wrong?

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2 Answers 2

up vote 5 down vote accepted

The regex a* means "match zero or more occurrences of the letter a". So if you input foo, zero as are matched so the expression is true. If you input bar, one a is matched so it is also true. Any input you enter will be matched.

Try changing to a+ if you want to match one or more occurrences of the letter a.

$ [[ foo =~ a+ ]] && echo match || echo "no match"
no match

$ [[ bar =~ a+ ]] && echo match || echo "no match"
match
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I'm feeling bad now...thanks. –  MRalwasser Feb 27 '13 at 14:32
    
Just to clarify, a+ matches one or more occurrences of the letter "a" in a row –  Explosion Pills Feb 27 '13 at 14:32
    
Could just leave off the quantifier entirely since a and a+ are functionally equivalent in this case (testing if at least one a is present) –  William Feb 27 '13 at 14:58

Just guessing: 'a*' would match 'a' zero or more times, which matches for pretty much any string. So I'd say you'd have to use 'a+' instead to match 'a' one or more times; and also you might want to add '^' or '$' to match at start/end of line depending on what you would like to achieve.

Cheers, Alex

EDIT: Ah, too late again ;-) At least seems like my guess was correct ;-)

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