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I want to verify if phone is in anrray, but with wildcard.

Inside the foreach I have thw follow code:

$phone = '98765432'; // Data of stored phone
$match = '987*5432'; // Input with search term

echo preg_match('/^' . str_replace('*', '.*', $match) . '$/i' , $phone);

When I search for one of the follows, preg_match should work:

9*
987*5432
987*
*876*

But, when I search with wrong numbers, for instance, preg_match should not work:

8*65432
*1*
98*7777

I have tried, but can't find the correct solution. Thanks!

EDIT 1

2*2* should pass to 2020, but not to 2002

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1  
Why would *7* not match? Seems like it should. –  nickb Apr 8 '13 at 15:44
    
@nickb Sorry, it is a typo –  Gabriel Santos Apr 8 '13 at 15:44

2 Answers 2

up vote 2 down vote accepted

You can try with \d, like this:

preg_match('/^' . str_replace('*', '(\d+)', $match) . '$/i' , $phone);
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Can you see the updated question, please? –  Gabriel Santos Apr 8 '13 at 15:55
1  
@GabrielSantos I updated the answer, just use \d+ instead of \d* –  Uby Apr 8 '13 at 15:57

Instead of trying to match everything, I would only focus on digits, since you know you're dealing with a phone number:

preg_match('/^' . str_replace('*', '\d*', $input) . '$/i' , $phone);

I wrote a simple test case that seems to work for your input.

$phone = '98765432'; // Data of stored phone

function test( $input, $phone) {
    return preg_match('/^' . str_replace('*', '\d*', $input) . '$/i' , $phone);
}

echo 'Should pass:' . "\n";
foreach( array( '9*', '987*5432', '987*', '*876*') as $input) {
    echo test( $input, $phone) . "\n";
}

echo 'Should fail:' . "\n";
foreach( array( '8*65432', '*1*', '98*7777') as $input) {
    echo test( $input, $phone) . "\n";
}

Output:

Should pass:
1
1
1
1
Should fail:
0
0
0
share|improve this answer
    
Can you see the updated question, please? –  Gabriel Santos Apr 8 '13 at 15:55

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