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regex:

/@([\S]*?(?=\s)(?!\. ))/g

given string:

'this string has @var.thing.me two strings to be @var. replaced'.replace(/@([\S]*?(?=\s)(?!\. ))/g,function(){return '7';})

expected result:

'this string has 7 two strings to be 7. replaced'

In case you want to make it "better" I'm trying to match Razor Html Encoded Expressions but mind the case about not matching an ending period followed by a space. The test case above shows that with the second (shorter) @var, whereas the first captures as @var.thing.me

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3 Answers 3

up vote 1 down vote accepted

Your pattern is not restrictive enough i.e., it captures too much. The last @var. (including the dot) in your example string is captured because it is followed by a space (as required by the positive lookahead) which, in addition, is not followed by a dot and a space (as required by the negative lookahead). You can try this pattern:

/@([\S]*?)(?=[.]?\s)/g

It will match the @something substring (which can contain dot characters) both when it is followed by a space (as it happens in the first match of your string) and when it is followed by a dot and a space (as it happens in the second match of your string). Testing it in the chromium browser console it seems to work fine:

> 'this string has @var.thing.me two strings to be @var. replaced'.replace(/@([\S]*?)(?=[.]?\s)/g,function(){return '7';})
"this string has 7 two strings to be 7. replaced"
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Try this

@((?!\. )\S)+

See it here at regexr

This matches a @ followed by non whitespace characters \S. But it matches the next non whitespace only, if it is not a dot followed by a space. This is ensured by the negative lookahead assertion (?!\. ) before the \S.

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Try with following regex:

var input = 'this string has @var.thing.me two strings to be @var. replaced';
input.replace(/(@[a-z][a-z.]+[a-z])/gi, function(){
  return '7';
});

This regex (@[a-z]([a-z.]+[a-z])*) matches @, then letter (in case there cannot be dot after @), then letters or dot and letter again at the end.

i modificator allows makes regex case-insensitive.

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This looks good but it doesn't replace short identifiers like @a and @at. If this is a problem I suggest this regex: /(@[a-z]([a-z.]+[a-z])*)/. –  tom_14159 Jan 18 '13 at 8:53
    
@tom_14159 you're right, thanks. I've edited my answer. –  hsz Jan 18 '13 at 8:57
    
Unfortunately I need more than just a-z support, but I see what you're going after here. Good combo. In fact, I may end up coming back to this, but for now an upvote. –  jcolebrand Jan 18 '13 at 14:59

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