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Trying to match all of these:

{_someWord1} ... $1=someWord, $2=1
{_another82} ... $1=another, $2=82 (item in question)
{_testX}     ... $1=test, $2=X

My regex: {_(\w+)(\d+|X)} matches all three, but the groups for the 2nd item are:

{_another82} ... $1=another8, $2=2

I'd like to be able to have any number of digits be in $2, and keep just the words in $1. Do I need to have a look ahead of some sort?

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Please provide your programming language/environment with any regex-related question, since regex flavors can differ significantly. –  Martin Büttner Aug 9 '13 at 16:15
    
Just in case, note that \w covers A-Z, a-z, 0-9, and _. –  doubleDown Aug 9 '13 at 16:56

2 Answers 2

up vote 3 down vote accepted

In most regex flavors, you could use ungreedy repetition, which consumes as little as possible (as opposed to the default - as much as possible):

{_(\w+?)(\d+|X)}

However, if the part before the digit, can never contain digits and underscores (which are included in \w) you could simply use a more specific character class:

{_([a-zA-Z]+)(\d+|X)}
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Try using a non-greedy match (adding a ? after \w+) to consume as little as possible and still match:

{_(\w+?)(\d+|X)}

or if your language (unspecified) supports look-arounds, then:

{_(\w+)(?<=[a-zA-Z])(\d+|X)}

which asserts that the last character of group 1 must be a letter (although letters may appear elsewhere within group 1)

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