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I'm looking for an efficient, elegant way to generate a JavaScript variable that is 9 digits in length:

Example: 323760488

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1  
or: 271828182 ? –  JohnB Aug 9 '10 at 3:28
    
e? is that you? –  ggg Aug 9 '10 at 4:05
    
or: 000000000 ? –  mykhal Aug 9 '10 at 4:21

7 Answers 7

up vote 13 down vote accepted

You could generate 9 random digits and concatenate them all together.

Or, you could call random() and multiply the result by 1000000000:

Math.floor(Math.random() * 1000000000);

Since Math.random() generates a random double precision number between 0 and 1, you will have enough digits of precision to still have randomness in your least significant place.

If you want to ensure that your number starts with a nonzero digit, try:

Math.floor(100000000 + Math.random() * 900000000);

Or pad with zeros:

function LeftPadWithZeros(number, length)
{
    var str = '' + number;
    while (str.length < length) {
        str = '0' + str;
    }

    return str;
}

Or pad using this inline 'trick'.

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Is the elegant & Efficient? –  AnApprentice Aug 9 '10 at 3:21
    
How would that be 9 digits in length? 9 digits needs to be a fixed length never more or less –  AnApprentice Aug 9 '10 at 3:23
1  
just need to handle cases like 0.000001234, pad with zeros up to 9 digits –  Mitch Wheat Aug 9 '10 at 3:24
    
@nobosh: 0 is a valid digit, even on the left side of your number. If you wanted a number >= 100000000, then you would have to say so (I've updated my answer to cover this case). –  ggg Aug 9 '10 at 3:24
    
convert the resulting number to a string. Pad with zeroes on left if length < 9. Zeroes are perfectly good random numbers and should not suffer discrimination! –  Larry K Aug 9 '10 at 3:27

why don't just extract digits from the Math.random() string representation?

Math.random().toString().slice(2,11);
/*
Math.random()                         ->  0.12345678901234
             .toString()              -> "0.12345678901234"
                        .slice(2,11)  ->   "123456789"
 */

(requirement is that every javascript implementation Math.random()'s precision is at least 9 decimal places)

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And these come out zero padded sweet –  James Andino Oct 9 '13 at 12:18

Also...

function getRandom(length) {

return Math.floor(Math.pow(10, length-1) + Math.random() * 9 * Math.pow(10, length-1));

}

getRandom(9) => 234664534

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Screen scrape this page:

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Three methods I've found in order of efficiency: (Test machine running Firefox 7.0 Win XP)

parseInt(Math.random()*1000000000, 10)

1 million iterations: ~626ms. By far the fastest - parseInt is a native function vs calling the Math library again. NOTE: See below.

Math.floor(Math.random()*1000000000)

1 million iterations: ~1005ms. Two function calls.

String(Math.random()).substring(2,11)

1 million iterations: ~2997ms. Three function calls.

And also...

parseInt(Math.random()*1000000000)

1 million iterations: ~362ms. NOTE: parseInt is usually noted as unsafe to use without radix parameter. See https://developer.mozilla.org/en/JavaScript/Reference/Global_Objects/parseInt or google "JavaScript: The Good Parts". However, it seems the parameter passed to parseInt will never begin with '0' or '0x' since the input is first multiplied by 1000000000. YMMV.

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Math.floor(Math.random()*899999999 + 100000000);

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has a bias..... –  Mitch Wheat Aug 9 '10 at 3:26

Start with the smallest 10-digit number, then subtract off a random number less than 1,000,000,000. Like so:

1000000000 - Math.floor(Math.random() * 1000000000);
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