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What regular expression can never match?

how do i write a regular expression which returns false always in php.

i wanted this bcos . i wanted to display a error msg with out a form rule...so i did like this..

if($values['result_msg'] == 'ERROR')
                    {
                    $form->registerRule('just_check','regex','/$^/');                       
                    $form->addRule('abc', 'Please enter valid Model Number.','just_check');
                    }
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marked as duplicate by a'r, ircmaxell, Daniel Vandersluis, Peter Boughton, VolkerK Aug 31 '10 at 13:18

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

3  
i don't see how practical this question is –  stillstanding Aug 31 '10 at 13:11
    
for what reason? if(preg_match(...)) never_perform_this(); ?? –  coding.mof Aug 31 '10 at 13:11
1  
I asked this once (for a good reason), but I can't find it. (nor remember the reason) –  Pekka 웃 Aug 31 '10 at 13:12
4  
I'm out of close votes. Here's one dupe: stackoverflow.com/questions/1845078/… –  Pekka 웃 Aug 31 '10 at 13:14
1  
"I can't imagine a use case" doesn't imply "dumb question". –  VolkerK Aug 31 '10 at 13:20

3 Answers 3

up vote 6 down vote accepted

There are lots of ways to do it:

  • /(?=a)b/

This fails to match because it searches for a character which is both a and b.

  • /\Zx\A/

This fails to match because the end of the string cannot come before the start of the string.

  • /x\by/

This fails to match because a word boundary cannot be between the characters x and y.

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I like $^ a lot. –  Pekka 웃 Aug 31 '10 at 13:15
1  
@Pekka: In PHP it's necessary to have a character between the $ and ^ otherwise it matches the empty string, $x^ for example. –  Mark Byers Aug 31 '10 at 13:22

I don't know why you want to do this, but this'll do it:

(?!x)x

The first bit (?!..) is a negative lookahead which says "make sure this position does not match the contents of this lookahead", where the contents is x, and then the final x says "match x" - since these two are opposites, the expression will never match.

You may also want to add start/end markers, i.e.

^(?!x)x$

You can swap both the x with pretty much anything, so long as both bits are equivalent.

There are plenty of other ways to do it, basically you just put two mutually exclusive conditions next to each other for matching the same place, and the regex will fail to match - see Mark's answer for more examples.

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wht is is trying to do? –  Hacker Aug 31 '10 at 13:11
    
pradeep, there is an explanation there now. Although you haven't explained why you want this in the first place - there's probably a better solution. –  Peter Boughton Aug 31 '10 at 13:15
    
@pradeep - @Peter told you what it was doing, what don't you understand? –  slugster Aug 31 '10 at 13:18
    
slugster, StackOverflow doesn't show initial edits - there were four revisions to the post, not the one which the history currently shows. –  Peter Boughton Aug 31 '10 at 13:22

Try this out:

$.^
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1  
If multiline dotall flag is enabled, would this not match a newline character? –  Peter Boughton Aug 31 '10 at 13:16
    
@Peter: no. pay attention to the order of $ and ^. –  NikiC Aug 31 '10 at 13:29
    
nikic, pay attention to what I'm saying! If multiline flag is enabled, $ matches "end of line" and ^ matches "start of line". If dotall flag is enabled . matches newline. Therefore, with multiline+dotall flags, $.^ will match the newline (\n) character in x\ny. –  Peter Boughton Aug 31 '10 at 13:54
    
(I've tested this with both Java and CF regex engines, and have verified this behaviour with those - I don't have a PHP setup handy to check for that.) –  Peter Boughton Aug 31 '10 at 13:55
    
Ah hadn't thought of multiline! Thanks for the enlightenment Peter. –  Johnny Saxon Aug 31 '10 at 14:08

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