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I am using this: if(!preg_match('/^+[0-9]$/', '+1234567'))

and am getting:

Warning: preg_match() [function.preg-match]: Compilation failed: nothing to repeat at offset 1

any ideas why?


update: Now using this: if(!preg_match('/^\+[0-9]$/', '+1234567'))

and am getting no match.

any ideas why?

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2 Answers

up vote 10 down vote accepted

+ is a special character that indicates 1 or more of the previous character, and by not escaping it you are applying it to the caret. escape it with \ and it will match a literal plus sign.

if(!preg_match('/^\+[0-9]$/', '+1234567'))

EDIT:

The reason why it didn't match is because you specified 1 digit from 0-9 and the end of the string with $. You need to make it a variable amount of digits.

if(!preg_match('/^\+[0-9]+$/', '+1234567')) {

Shorter version:

if(!preg_match('/^\+\d+$/', '+1234567')) {
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Cheers, Have edited the question now to reflect the current problem. –  Hailwood Jul 11 '10 at 12:46
    
Hailwood, you shouldn't remove the old problem, but should show both together. (just edited to do that). –  Peter Boughton Jul 11 '10 at 12:49
    
Also, the current problem is correct behavour - you are asking regex to match a single plus, a single 0..9, then find the end of line position, which your input does not do. To match your supplied input you want either ^\+[0-9]+$ or ^\+[0-9]{7}$ or similar. –  Peter Boughton Jul 11 '10 at 12:54
    
@peter Thanks, will keep that in mind @meder Cheers, Perfect. i actually know about the d flag, but use [0-9] for personal preference as i think it increases readability at a glance, are there any speed benefits to using the flag vs [0-9]? –  Hailwood Jul 11 '10 at 13:00
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'/^\+[0-9]$/' means that begining of the line has to be plus sign folowed by a number then end of line.

'/^\+[0-9]+$/' means that begining of the line has to be plus sign folowed by a one or more numbers then end of line.

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