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I've recently discovered some other ways to remove the fractional part of numeric values in JavaScript other than Math.floor(n), specifically the double bitwise NOT operator ~~n and performing a bitwise or with 0 n|0.

I'd like to know what are the difference between these approaches and what the different scenarios are where one method is recommended over another.

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eventually, there will be no difference as browsers evolve, see the consistent performance of chrome jsperf.com/math-floor-vs-math-round-vs-parseint/41 , it's better write maintainable code –  ajax333221 Jun 5 '12 at 3:57
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@ajax333221 I just love how the IE entry looks like it is missing data ;-) –  user166390 Jun 5 '12 at 4:04

3 Answers 3

up vote 6 down vote accepted

Be clear to the next person looking at your code and use Math.floor().

The performance gain of 1%-40% isn't really worth it, so don't make your code confusing and hard to maintain.

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(So they don't have to ask "What does n|0 mean?" on SO...) –  user166390 Jun 5 '12 at 1:32
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@pst you probably meant repost instead of ask –  ajax333221 Jun 5 '12 at 3:54
    
@josh3736 incorrect test.... some engines caches Math.* results... –  4esn0k Jun 29 '12 at 3:30

The operands of all bitwise operators are converted to signed 32-bit integers:

Math.floor(2147483648) // 2147483648
2147483648 | 0         // 2147483648
~~2147483648           // 2147483648

Math.floor(2147483649) // 2147483649
2147483649 | 0         // -2147483647
~~2147483649           // -2147483647

So use Math.floor();

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(I entirely agree with josh's answer: favor clear maintainable code.)

Here is an explanation on the other bit-wise approaches:

The bit-wise operators work because they only operator on 32-bit (signed) integers but numbers in JavaScript are all IEEE-754 values. Thus, there is an internal conversion (truncation, not floor!) that happens to operands for bit-wise operators.

The applied bit-wise operation (e.g. n<<0, ~~n or n|0) then acts as an identity function which "does nothing" to the converted values: that is, all of these approaches rely on the same conversion applied to bit-wise operands.

Try n as a negative number or a value outside of [-231, 231-1]:

(-1.23|0)            // -1
Math.floor(-1.23)    // -2

var x = Math.pow(2, 40) + .5
x|0                  // 0
Math.floor(x)        // 1099511627776

Happy coding.

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