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In my project (php), I got some regexs(pcre) like this one :

preg_match('/[\s^0-9]{0,1}([0-9]{2})[\s^0-9]{0,1}/',$chanson['nom'],$resultPreg1)

This regex catch two numbers who can be delimited or not by a single space, and can't be delimited by number. What I want to do is, that there is or a space (and no number) in beginning, or a space (and no number) at the end. But it must have at least one delimiter.

How can I do this ?

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Examples would work very well in this situation ;-) –  Ja͢ck Feb 26 '13 at 11:34

2 Answers 2

up vote 1 down vote accepted

You simply need to split it up and test each case:

/\s\d{2}\D|\D\d{2}\s/

This will match a space, two digits, and any non-digit character or a non-digit character, two digits and a space.

Note: \d is a digit, equivalent to [0-9]. \D is a non-digit, equivalent to [^0-9].

The above regex requires there to be at least one non-digit on each side of the numbers, however. Also, if you had a pattern like .11 22., it would not match both numbers, because the space would be eaten up by the first match. If this is a problem, you can use look-arounds:

/\s\d{2}(?!\d)|(?<!\d)\d{2}\s/

This matches a space, then two digits not followed by another digit or two digits not preceded by a digit, followed by a space.

(?!...) is negative look-ahead. It means "the match cannot be followed by this."

(?<!...) is negative look-behind, meaning "the match cannot be preceded by this."

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ok thank you. I didn'nt knew \d so usefull... so we can use | as or and & as and ? –  vekah Feb 26 '13 at 11:36
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Yes, | means or. If you need it to only apply to part of the pattern, put it within a group: /(?:spl|dr)at/ matches "splat" or "drat". There is nothing to mean and, because by default the pattern has to match everything. –  dan1111 Feb 26 '13 at 11:40
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@vekah, see the updated second version, which will match two digits even at the beginning or end of the string. –  dan1111 Feb 26 '13 at 11:40
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@vekah, I'm not sure what you mean by that. (?!*) is not valid however. –  dan1111 Feb 26 '13 at 11:49
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@vekah, preg only captures regular parentheses. Parentheses with special meaning such as (?!...), (?:...), etc. do not capture. Any time the first character in parentheses is ?, it has a special meaning and is not a capturing group. –  dan1111 Feb 26 '13 at 12:38

You can't mix the negative and positive character classes in a single set of square brackets. A "space" OR "not a number" could be written \s|[^0-9]. But a space isn't a number, so no need to put it in specially, just [^0-9] will suffice for you. Your syntax for "zero or one" of {0,1} is technically correct, but there is a much more concise syntax for the same thing: ?.

preg_match('/[^0-9]?([0-9]{2})[^0-9]?/',$chanson['nom'],$resultPreg1)

You could almost use word breaks around your number to get what you are looking for except it wouldn't find numbers embedded in letters like "abc23def".

preg_match('/\b([0-9]{2})\b/',$chanson['nom'],$resultPreg1)
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