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good evening,
i need to check if the input match my regex or not
i use this pattern '@^[a-zA-Z\@]{3,30}$@is'

<?php
if( preg_match('@^[a-zA-Z\@]{3,30}$@is', 'input@input') ){ echo 'matched'; }else{ echo 'no match'; }
?>

if i removed the @ char the regex still return TRUE

<?php
if( preg_match('@^[a-zA-Z\@]{3,30}$@is', 'inputinput') ){ echo 'matched'; }else{ echo 'no match'; }
?>

i need to edit the regex so it should contain the @ char

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1  
so you need how many @s in the string? where in the string does it have to be? –  Dave Lasley Aug 27 '11 at 9:39
    
Please give some example input cases, and whether they are valid or not. –  Second Rikudo Aug 27 '11 at 9:46
    
hi all, what about use @ char at first or at end ? --- true cases: aa@aa , @aa , aa@ --- false cases: aa .. –  al-dr Aug 27 '11 at 10:02
    
thank you all, you all are great .. –  al-dr Aug 27 '11 at 10:10

4 Answers 4

up vote 2 down vote accepted

You can use a look-ahead assertion to assert that:

/^(?=[^@]*@)[a-zA-Z@]{3,30}$/is

Here the look-ahead assertion (?=[^@]*@) ensures that there is at least one @.

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thank you very much Gumbo, you are great .. –  al-dr Aug 27 '11 at 10:08

It's very simple - just use strpos() to find @ character in string. For example

if(strpos('@','thestring')!==FALSE)
{
  /* it contains @ */
}
else
{
  /* it doesn't */
}
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hi GlitchMr, so you need me to use it beside regex ? is there a way to done it by regex only ? –  al-dr Aug 27 '11 at 9:48

try this:

%^[a-z]{2,29}@[a-z@]{2,29}$%is

Several Issues I also fixed:

  • You don't need to use [a-zA-Z] if you specified the i controller for case insensitivity.
  • You can change the delimiters to whatever (almost) character you'd like, if you know a character will be in the regex pattern, don't use it as delmiter.
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The problem is that aa@aa doesn't fit this regexp. –  xfix Aug 27 '11 at 9:42
    
You are right. corrected. –  Second Rikudo Aug 27 '11 at 9:45
    
hi Rikudo Sennin, your note is very important to me . thank you .. * your regex return false . –  al-dr Aug 27 '11 at 9:50
    
Now this regexp is too liberal. It can be above 30 characters and still pass. Sadly, unsolvable without making insane long regexp or another piece of code, like my strpos(). –  xfix Aug 27 '11 at 9:51
    
Unless the OP will state exactly what the terms of a valid string is, I don't see this question getting anywhere. –  Second Rikudo Aug 27 '11 at 10:01

try this

~^[a-z]?@[a-z@]+$~i

If you need only 1 @ char between a-z blocks you may use

~^[a-z]+@[a-z]+$~i

if you want to check full length of string you may use strlen, if you want do it for every part separately just replace + by {mincnt,maxcnt}

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thank you very much RiaD, what about use @ char at first or at end ? –  al-dr Aug 27 '11 at 9:59
    
@al-dr please edit your question to include valid and invalid input examples. We won't guess what you need. –  Second Rikudo Aug 27 '11 at 10:00

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