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If, in a string, there are valid numbers without a leading zero, like ".5", "+.5", or "-.5", how to use RegExp to match such a pattern and then add a leading zero?

Say,

s=".5x-.3/+.74x1.2"

I want it to be

0.5x-0.3/+0.74x1.2

and use

(?!\d)([+-]?)(?!\d)(\.\d+)

as Pattern and $10$2 as Replacement, but why doesn't it deliver the right things?

PS: I am using VBScript RegExp engine in Excel

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2 Answers

up vote 1 down vote accepted

Replace (?<!\d)\.(?=\d) with 0., assuming your regex flavor supports negative look-behind.

(?<!\d) is not preceded by a digit (different from \D wich would be preceded by a character that is not a digit and wouldn't match if the string begins with .5), non-consuming (negative look-behind).

\. is the dot (duh), consuming.

(?=\d) means that the dot must be followed by a digit, non-consuming (positive look-ahead).

The only consumed character is the dot, so you only have to replace it with 0..


Edit: Since VBScript doesn't support look-behinds, you can use the slightly more complicated replacement of (\D|^)\.(?=\d) with $10. (assuming the VBScript flavor doesn't try to get the 10th group, wich JavaScript doesn't seem to do). The (\D|^)\. part will match a dot preceded by either the start of the string or any non-digit character. This previous character is consumed, so you have to put it back, hence the $1.

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This won't work - VBScript is an ECMAScript dialect, and therefore lookbehind assertions are not available, as I've detailed in my answer. –  Tim Pietzcker Mar 1 '13 at 10:25
    
Thanks, edited the answer accordingly. –  instanceof me Mar 1 '13 at 10:53
    
thank you all for let me know lookaround better now! @streetpc's code (\D|^)\.(?=\d) works. VBScript flavor doesn't support lookbehind. Have to use this way to work around. –  visualPaul Mar 1 '13 at 22:44
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\B\.

matches a dot only if it's not preceded by a digit (or letter), which should work for your requirements. Replace that with 0.

Why doesn't your regex work? Well, it says

(?!\d)  # Make sure the next letter isn't a digit
([+-]?) # Try to match a sign (which never is a digit, so why the lookahead?)
(?!\d)  # Make sure the next letter isn't a digit (again)
(\.\d+) # Match a dot and digits (the dot also isn't a digit, so again
        # the lookahead is not necessary)

So, you could drop the first lookahead completely, and the second lookahead would have to be a lookbehind to do what you want it to do (namely asserting that the character before the dot isn't a digit), but ECMAScript doesn't know lookbehinds, so we have to make do with word boundary anchors.

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Isn't \D "anything but a digit"? –  Simon Mar 1 '13 at 9:52
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@Simon, it is \B "not a word boundary", the negation of \b and not \D –  stema Mar 1 '13 at 9:53
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Does this fail on .5x.5, because the . is preceded by a letter? Seems x is being used here for multiplication. –  Tim Mar 1 '13 at 22:07
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