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just find gives me:

.
./bla-bla_(11)
./bla-bla_(1)
./rename
./rename~

This find . | grep "*_([0-9]\{1,2\})" gives me empty result.

and this find . | grep "([0-9]\{1,2\})_*" gives me

./bla-bla_(11)
./bla-bla_(1)

But as you can see underscore and other chars appears before braced digites. Why it works in second case? but not in first where i placed them in right order.

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i think _ is special symbol, it was the reason. –  Yola Dec 27 '11 at 13:38
    
No, _ is not special wrt. regexes. –  larsmans Dec 27 '11 at 14:26

2 Answers 2

up vote 1 down vote accepted
([0-9]\{1,2\})_*

matches things like (11) or (1) followed by zero or more underscores.

*_([0-9]\{1,2\})

matches a * followed by _ followed by something like (11). What you mean is

.*_([0-9]\{1,2\})

Note the .; regular expressions aren't glob patterns.

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2  
*_([0-9]\{1,2\}) is not a valid regex. –  kev Dec 27 '11 at 13:33
1  
@kev: actually for grep it is. Try echo '*' | grep '*'. –  larsmans Dec 27 '11 at 13:35
    
why echo 'hello' | grep -o 'h**' print h? –  kev Dec 27 '11 at 13:46
    
@kev: that's parsed as "zero or more times (zero or more times h)", so it should match. –  larsmans Dec 27 '11 at 14:27

As @kev says, your first regex is invalid: * is a quantifier, and it should be preceded by an atom. Here it isn't.

Regexes are not file globs. You probably want .*, which means "any character (.), zero or more times (*)".

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