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I want to match the value of the integer in 64bit and 32bit systems, this is an example of my PHP script

function integer_hash_aritmathic ($value)
{       
    $maxVal = 2147483647 & 0xFFFFFFFF;
    $minVal = -2147483648 & 0xFFFFFFFF;
    $hash = 0;  

    for ($i = 0; $i < strlen($value); $i++)
    {
        $hash = (intval($hash) * 31) + ord($value[$i]);

        if ($hash > $maxVal) $hash = $hash + $minVal - $maxVal - 1;
        else if ($hash < $minVal) $hash = $hash + $maxVal - $minVal + 1;

    }


    return (int)$hash;
}

echo integer_hash_aritmathic ('21512510');

output in 32Bit System : -951649475

Output in 64Bit System : 1283243572029

I want the same results on a 64bit system with 32bit, with the value of -951649475, please help me... thanks, I'am sory my english language is bad...

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What is the value of $minVal on the 64-bit system? – Terje D. Mar 9 '13 at 20:13

You seem to be trying to emulate 32 bit overflow on the 64 bit system.

The problem is probably that on a 64-bit system $minVal = -2147483648 & 0xFFFFFFFF zeroes the sign bits, setting the value of $minval to 2147483648. $hash = $hash + $minVal - $maxVal - 1 then effectively becomes $hash = $hash and all calculations are done using the full integer size.

If you remove the & 0xFFFFFFFF which is causing the problem on 64-bit systems (and have no effect on 32-bit systems) your code should work.

Another option is to limit the hash values to 31 bits, resulting in only positive numbers.

The code can then be simplified to

function integer_hash_aritmathic ($value){       
    $hash = 0;  

    for ($i = 0; $i < strlen($value); $i++) {
        $hash = ($hash * 31 + ord($value[$i])) & 0x7FFFFFFF;               
    }

    return (int)$hash;
}
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