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I've wanted to check if a number in PHP was proper binary. So far I've added this to check if it is devisable by 8:

if(strlen($binary) % 8 == 0){
        return true;
} else {
        return false;
}

It works, but it obviously allows other numbers to be placed in, such as 22229999.

What method can I use to make sure only 1's and 0's are in the string? such as 10001001. Not sure how to go about this.

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4 Answers 4

up vote 5 down vote accepted

This may be faster than firing up the regex engine:

if (strspn ( $subject , '01') == strlen($subject)) {
    echo 'It\'s binary!';
} else {
    echo 'Not binary!';
}

If you just look for simple characters or want to count them, regex is often quite slow while one or two built in string function can do the job much faster. Maybe this does apply here, maybe not.

After hearing some remarks in the comments, that this might not work, here's a test case:

<?php

$strings = array('10001001', '22229999', '40004000');

foreach ( $strings as $string )
{
    if ( strspn( $string, '01') == strlen( $string ) ) {
        echo $string . ' is binary!' . "\n";
    } else {
        echo $string . ' is NOT binary!' . "\n";
    }
}

It does the job.

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@Tech, i doubt either has any significant performance impact anyway, so much faster is not really likely. I'd imagine strspn is making use of a very regex like engine to do its work anyway. –  Paul Creasey Jan 30 '10 at 11:11
    
@Techpriester: +1 from me, check my answer for an alternative solution. –  Alix Axel Jan 30 '10 at 11:18
    
The performance gain of course depends on the amount of string that are matched. If he runs this over several thousand strings, it may be of impact. –  lnwdr Jan 30 '10 at 11:26
    
This method does not seem to work. Allows 40004000 etc. –  oni-kun Jan 30 '10 at 11:28
1  
@alix: Read your example code again, you forgot to change one "$subject" into "$string" (line 7). With correctly named variables, it works. –  lnwdr Jan 30 '10 at 12:06
for variety

if (!preg_match('/[^01]/', $str))
{
    echo 'is binary';
}
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if (preg_match('~^[01]+$~', $str))
{
    echo 'is binary';
}

Inspired by Techpriester's answer (fixed bug):

if (in_array(count_chars($str, 3), array('0', '1', '01'))
{
    echo 'is binary';
}
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if ( preg_match('#^[01]+$#', $string) )
share|improve this answer
    
Malformed regex. –  Alix Axel Jan 30 '10 at 10:52
    
Thanks, fixed (15 chars) –  Matteo Riva Jan 30 '10 at 10:58

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