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How can I test a variable to ascertain if it contains a number, and it is an integer?

e.g.

if (1.589 == integer) // false
if (2 == integer) // true

Any clues?

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9 Answers 9

up vote 35 down vote accepted
num % 1 === 0

This will convert num to type Number first, so any value which can be converted to an integer will pass the test (e.g. '42', true).

If you want to exclude these, additionally check for

typeof num === 'number'

You could also use parseInt() to do this, ie

parseInt(num) == num

for an untyped check and

parseInt(num) === num

for a typed check.

Note that the tests are not equivalent: Checking via parseInt() will first convert to String, so eg true won't pass the check.

Also note that the untyped check via parseInt() will handle hexadecimal strings correctly, but will fail for octals (ie numeric strings with leading zero) as these are recognized by parseInt() but not by Number(). If you need to handle decimal strings with leading zeros, you'll have to specify the radix argument.

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This one does it, thank you. –  jirkap Aug 24 '09 at 16:56

This works:

if (Math.floor(x) == x)
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This has the advantage of working if x is false; –  Paul D. Waite Oct 8 '13 at 12:40

Someone has already done it for you.

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As @Greg says above (stackoverflow.com/questions/1323314/…), this should include the radix parameter to parseInt. –  bdukes Aug 24 '09 at 16:50

You could use the formal definition of integer:

Math.floor(x) === x
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How about this:

if((typeof(no)=='number') && (no.toString().indexOf('.')==-1))
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That won't work because 8.000 is still an integer. –  Matt Ball Aug 24 '09 at 16:24
1  
That probably depends on your definition (and use case) of integer –  bdukes Aug 24 '09 at 16:48
    
Hmm. True. For inherently mathematical questions, I tend to think of them in terms of numbers and not numerals - hence, my comment above. –  Matt Ball Aug 24 '09 at 16:53
    
@MattBall It works for 8.000 too. When you invoke toString() on that number, you get '8'. Demo: jsfiddle.net/Msyrh –  Šime Vidas Oct 21 '11 at 20:45

you could either make use of javas parsing capabilities or as well try out the modulo operator %...

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Would this not work:

if (parseInt(number, 10) == number)
{
  alert(number + " is an integer.");
}
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1  
You should always include the radix parameter: parseInt(number, 10) –  Greg Aug 24 '09 at 16:27
    
Oops, yes. Fixed it. –  paracycle Aug 24 '09 at 16:45
    
@Greg: not necessarily - one might want hexadecimals to pass; octals will fail as they are recognized by parseInt() but not by Number() –  Christoph Aug 24 '09 at 16:55

This should do it:

n === n | 0

For a given number value n, the above expression returns true only if the number is an integer.

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There is a javascript function called isNaN(val) which returns true if val is not a number.

If you want to use val as a number, you need to cast using parseInt() or parseFloat()

EDIT: oops. Corrected the error as mentioned in the comment

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1  
Just from the name of the function, I would think "isNaN" would return true if val "is Not a Number", which is what NaN stands for. Typo? –  Matt Ball Aug 24 '09 at 16:23
1  
isNaN(val) returns true if val is not a number, but it returns false for non-integer numbers as well so it won't solve the problem. –  Amuck Aug 24 '09 at 16:33

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