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In JavaScript, how do I get:

  1. the whole number of times a given integer goes into another?
  2. the remainder?
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7 Answers 7

up vote 364 down vote accepted

For some number y and some divisor x compute the division (div) and remainder (rem) as:

var div = Math.floor(y/x);
var rem = y % x;
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34  
% works on floats in JavaScript (this differs from many other languages), which is perhaps not desired: 3.5 % 2 evaluates to 1.5. Make sure to handle (parseInt, floor, etc.) as required –  user166390 Nov 19 '10 at 19:09
31  
@Yarin - Just be aware that Math.floor() will give the wrong result if the result of the division is a negative number. See my answer for a couple of possible alternatives. –  user113716 Nov 19 '10 at 19:19
12  
@patrick You mean it will give the correct result and not a wrong result like C/C++ does, for example. Unless we've overriden maths with processor bugs. –  julkiewicz May 6 '11 at 22:29
19  
@julkiewicz: I meant the wrong result with respect to the result desired in the question. If y=-9; x=2 the desired value of div would be -4, but Math.floor would give -5. –  user113716 May 14 '11 at 16:35
    
@user113716 seems to me you could avoid bitwise operators and just use Math.abs to deal with the negative case –  Jonny Leeds Sep 17 at 13:33

I'm no expert in bitwise operators, but here's another way to get the whole number:

var num = ~~(a / b);

This will work properly for negative numbers as well, while Math.floor() will round in the wrong direction.

This seems correct as well:

var num = (a / b) >> 0;
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30  
Another one, whose purpose I just spent the last 20 minutes trying to figure out, is apparently a/b | 0 –  BlueRaja - Danny Pflughoeft Mar 25 '11 at 22:42
2  
@down-voter: Can you please explain where this answer is not correct? As I stated, I'm no expert in bitwise operators, so if something is wrong, please let me know. –  user113716 Sep 12 '11 at 20:16
8  
@user113716 @BlueRaja Bitwise operations makes sense only on integer-types and JS (of course) knows that. ~~int, int | 0 and int >> 0 doesn't modify initial argument, but make interpreter pass integral part to operator. –  elmigranto Jul 15 '12 at 15:15
2  
That's a buu buu. a = 12447132275286670000; b = 128 Math.floor(a/b) -> 97243220900677100 and ~~(a/b) -> -1231452688. –  Mirek Rusin Mar 26 at 13:03
1  
Be careful with precedence. ~~(5/2) --> 2 as does (5/2)>>0 --> 2, but ~~(5/2) + 1 --> 3, while ~~(5/2)>>0 + 1 --> 1. ~~ is a good choice because the precedence is more appropriate. –  timkay May 29 at 3:36

I did some speed tests on Firefox.

-100/3             // -33.33..., 0.3663 millisec
Math.floor(-100/3) // -34,       0.5016 millisec
~~(-100/3)         // -33,       0.3619 millisec
(-100/3>>0)        // -33,       0.3632 millisec
(-100/3|0)         // -33,       0.3856 millisec
(-100-(-100%3))/3  // -33,       0.3591 millisec

/* a=-100, b=3 */
a/b                // -33.33..., 0.4863 millisec
Math.floor(a/b)    // -34,       0.6019 millisec
~~(a/b)            // -33,       0.5148 millisec
(a/b>>0)           // -33,       0.5048 millisec
(a/b|0)            // -33,       0.5078 millisec
(a-(a%b))/b        // -33,       0.6649 millisec

The above is based on 10 million trials for each.

Conclusion: Use (a/b>>0) (or (~~(a/b)) or (a/b|0)) to achieve about 20% gain in efficiency. Also keep in mind that they are all inconsistent with Math.floor, when a/b<0 && a%b!=0.

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I find Math.floor() has more stable performance than others do. it is less up-and-down –  Henry Leu Sep 12 '13 at 10:53
1  
Here's a nice set of test cases: jsperf.com/whole-integer-division –  evan.bovie Nov 27 '13 at 21:10
4  
Note that optimizing integer division for speed would make sense only if you're doing it a lot. In any other case I would recommend choosing the simplest one (whichever seems simplest to you and your coworkers). –  m01 Jan 8 at 14:49
    
@m01 totally agree - there's way too much of a focus on stuff like this online –  Jonny Leeds Sep 17 at 13:32
var remainder = x % y;
return (x - remainder) / y;
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This version unfortunately fails the test when x = -100 because it returns -34 instead of -33. –  Samuel Dec 7 '13 at 1:45

ES6 introduces the new Math.trunc method. This allows to fix @MarkElliot's answer to make it work for negative numbers too:

var div = Math.trunc(y/x);
var rem = y % x;

Note that Math methods have the advantage over bitwise operators that they work with numbers over 231.

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en.wikipedia.org/wiki/… –  4esn0k Jul 25 at 6:37

JavaScript calculates right the floor of negative numbers and the remainder of non-integer numbers, following the mathematical definitions for them.

FLOOR is defined as "the largest integer number smaller than the parameter", thus:

  • positive numbers: FLOOR(X)=integer part of X;
  • negative numbers: FLOOR(X)=integer part of X minus 1 (because it must be SMALLER than the parameter, i.e., more negative!)

REMAINDER is defined as the "left over" of a division (Euclidean arithmetic). When the dividend is not an integer, the quotient is usually also not an integer, i.e., there is no remainder, but if the quotient is forced to be an integer (and that's what happens when someone tries to get the remainder or modulus of a floating-point number), there will be a non-integer "left over", obviously.

JavaScript does calculate everything as expected, so the programmer must be careful to ask the proper questions (and people should be careful to answer what is asked!) Yarin's first question was NOT "what is the integer division of X by Y", but, instead, "the WHOLE number of times a given integer GOES INTO another". For positive numbers, the answer is the same for both, but not for negative numbers, because the integer division (dividend by divisor) will be -1 smaller than the times a number (divisor) "goes into" another (dividend). In other words, FLOOR will return the correct answer for an integer division of a negative number, but Yarin didn't ask that!

gammax answered correctly, that code works as asked by Yarin. On the other hand, Samuel is wrong, he didn't do the maths, I guess, or he would have seen that it does work (also, he didn't say what was the divisor of his example, but I hope it was 3):

Remainder = X % Y = -100 % 3 = -1

GoesInto = (X - Remainder) / Y = (-100 - -1) / 3 = -99 / 3 = -33

By the way, I tested the code on Firefox 27.0.1, it worked as expected, with positive and negative numbers and also with non-integer values, both for dividend and divisor. Example:

-100.34 / 3.57: GoesInto = -28, Remainder = -0.3800000000000079

Yes, I noticed, there is a precision problem there, but I didn't had time to check it (I don't know if it's a problem with Firefox, Windows 7 or with my CPU's FPU). For Yarin's question, though, which only involves integers, the gammax's code works perfectly.

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Math.floor(operation) returns the rounded value of the operation.

EXAMPLE OF 1ST QUESTION:

var x = 5;
var y = 10.4;
var z = Math.floor(x + y);

console.log(z);

CONSOLE:

15

EXAMPLE OF 2ND QUESTION

var x = 14;
var y = 5;
var z = Math.floor(x%y);

console.log(x);

CONSOLE:

4

I hope this helped!

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