Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I would like the simplest, failsafe test to check that a string in JavaScript is a positive integer.

isNan(str) returns true for all sorts of non-integer values and parseInt(str) is returning integers for float strings, like "2.5". And I don't want to have to use some jQuery plugin either.

share|improve this question
4  
Do you allow "+2"? How about "0.1e1"? How about "1.0000"? –  Phrogz May 31 '12 at 13:43
    
The isNaN() function behaves the way it does because the concept Not a Number has a very specific meaning in the IEEE 794 floating point specification. It does not intend to supply an answer to the simple colloquial question, "is this value not a number?" –  Pointy May 31 '12 at 13:52
    
@Phrogz Yeah, I realized that and deleted the comment, my mistake :P –  Chango May 31 '12 at 13:57
3  
The question is vague to the extreme. You cannot validate that "a string is an integer", because there's no such thing - no object can be a string and a number at the same time. You probably meant "how to test if a string is a valid representation of an integer", but to answer this we need to know which language or "culture" you're talking about. For example, ٢‎٣٤ or MCMXIX are both valid integer representations, but I don't think you're looking for a code that would be able to parse these. Could you specify which number formats you're going to support, as people seem confused about that. –  georg May 31 '12 at 15:14
3  
I think 'vague to the extreme' is itself a bit extreme; but anyway... The context is validation of an quantity input field on a shopping cart used in an English speaking country, so only Western numerals. By "positive" I meant greater than zero. Would I accept the following : "+2" yes, "0.1e1" no , "1.000" sure why not. However, if you can provide an answer that can be adjusted to include / exclude these various specialised scenarios I promise to give you extra ups (and I'm sure others will too). –  Mick Byrne Jun 4 '12 at 12:42

6 Answers 6

up vote 96 down vote accepted

Two answers for you:

  • Based on parsing

  • Regular expression

Note that in both cases, I've interpreted "positive integer" to include 0, even though 0 is not positive. I include notes if you want to disallow 0.

Based on Parsing

If you want it to be a normalized decimal integer string over a reasonable range of values, you can do this:

function isNormalInteger(str) {
    var n = ~~Number(str);
    return String(n) === str && n >= 0;
}

Live testbed | source

If you want to disallow 0, just change >= 0 to > 0.

How that works:

  1. Number(str): Convert str to a number; the number may well have a fractional portion, or may be NaN.

  2. ~~: Truncate the number (chops off any fractional portion).

  3. String(...): Converts the result back into a normal decimal string. For really big numbers, this will go to scientific notation, which may break this approach. (I don't quite know where the split is, the details are in the spec, but for whole numbers I believe it's at the point you've exceeded 21 digits [by which time the number has become very imprecise, as IEEE-754 double-precision numbers only have roughtly 15 digits of precision..)

  4. ... === str: Compares that to the original string.

  5. n >= 0: Check that it's positive.

Note that this fails for the input "+1" and any input in scientific notation that doesn't turn back into the same scientific notation at the String(...) stage. The former is an easy fix, the latter not so much, but only relevant for very, very large numbers.

Regular Expression

The other approach is to test the characters of the string via a regular expression, if your goal is to just allow (say) an optional + followed by either 0 or a string in normal decimal format:

function isNormalInteger(str) {
    return /^\+?(0|[1-9]\d*)$/.test(str);
}

Live testbed | source

How that works:

  1. ^: Match start of string

  2. \+?: Allow a single, optional + (remove this if you don't want to)

  3. (?:...|...): Allow one of these two options (without creating a capture group):

    1. (0|...): Allow 0 on its own...

    2. (...|[1-9]\d*): ...or a number starting with something other than 0 and followed by any number of decimal digits.

  4. $: Match end of string.

If you want to disallow 0 (because it's not positive), the regular expression becomes just /^\+?[1-9]\d*$/ (e.g., we can lose the alternation that we needed to allow 0).

share|improve this answer
    
I absolutely love ~~n. First heard about it in a post by James Padolsey, it still amazes me. –  Mattias Buelens May 31 '12 at 13:48
1  
Thanks. Not only did you answer my question, your explanations are very enlightening. –  Mick Byrne Jun 4 '12 at 12:33
    
both Number(' ') and Number('') return 0 while should return NaN instead. –  neurino Mar 18 '13 at 11:34
    
@neurino: Yeah, I always use parseInt because I usually don't want that kind of coercion. :-) –  T.J. Crowder Mar 18 '13 at 11:39
3  
I think this is one of the first accepted answers for number/int/float validation I've seen where the first comment doesn't say "this is wrong". –  Gavin Jun 29 at 20:55

Looks like a regular expression is the way to go:

var isInt = /^\+?\d+$/.test('the string');
share|improve this answer
    
Close, unless "1.0" or ".1e1" are allowed. –  Phrogz May 31 '12 at 13:44
    
Well 1290000192379182379123782900192981231 is an integer but it's not representable exactly in JavaScript native numbers, so with a regex it's still necessary to do a numeric conversion and verify that it worked. –  Pointy May 31 '12 at 13:50
2  
+1 for simplicity, not sure why this isn't getting more votes. –  T.J. Crowder May 31 '12 at 14:00
    
This is a very imprecise solution. –  usr May 31 '12 at 14:25
5  
@Chango: Sorry, but surely downvoting for not handling scientific notation when the OP didn't say anything about it is a bit harsh? And what do you mean it "doesn't work" with "-1" or "1.0"? Those are specifically meant to fail, according to the OP. –  T.J. Crowder May 31 '12 at 14:52
return ((parseInt(str, 10).toString() == str) && str.indexOf('-') === -1);

won't work if you give a string like '0001' though

share|improve this answer

This is almost a duplicate question fo this one:

Validate numbers in JavaScript - IsNumeric()

It's answer is:

function isNumber(n) {
  return !isNaN(parseFloat(n)) && isFinite(n);
}

so, a positive integer would be:

function isPositiveInteger(n) {
  var floatN = parseFloat(n);
  return !isNaN(floatN) && isFinite(n) && floatN > 0
      && floatN % 1 == 0;
}
share|improve this answer
1  
Doesn't work for '1290000981231123.1' as well. –  Niko May 31 '12 at 14:58
    
that's intresting! –  Chango May 31 '12 at 15:18
    
I know it's almost a duplicate to that 'Validate numbers in JavaScript' question, I read through that whole thing, but I thought a question specifically about string representations of integers deserved it's own page. –  Mick Byrne Jun 4 '12 at 12:48

Solution 1

If we consider a JavaScript integer to be a value of maximum 4294967295 (i.e. Math.pow(2,32)-1), then the following short solution will perfectly work:

function isPositiveInteger(n) {
    return n >>> 0 === parseFloat(n);
}

DESCRIPTION:

  1. Zero-fill right shift operator does three important things:
    • truncates decimal part
      • 123.45 >>> 0 === 123
    • does the shift for negative numbers
      • -1 >>> 0 === 4294967295
    • "works" in range of MAX_INT
      • 1e10 >>> 0 === 1410065408
      • 1e7 >>> 0 === 10000000
  2. parseFloat does correct parsing of string numbers (setting NaN for non numeric strings)

TESTS:

"0"                     : true
"23"                    : true
"-10"                   : false
"10.30"                 : false
"-40.1"                 : false
"string"                : false
"1234567890"            : true
"129000098131766699.1"  : false
"-1e7"                  : false
"1e7"                   : true
"1e10"                  : false
"1edf"                  : false
" "                     : false
""                      : false

DEMO: http://jsfiddle.net/5UCy4/37/


Solution 2

Another way is good for all numeric values which are valid up to Number.MAX_VALUE, i.e. to about 1.7976931348623157e+308:

function isPositiveInteger(n) {
    return 0 === n % (!isNaN(parseFloat(n)) && 0 <= ~~n);
}

DESCRIPTION:

  1. !isNaN(parseFloat(n)) is used to filter pure string values, e.g. "", " ", "string";
  2. 0 <= ~~n filters negative and large non-integer values, e.g. "-40.1", "129000098131766699";
  3. (!isNaN(parseFloat(n)) && 0 <= ~~n) returns true if value is both numeric and positive;
  4. 0 === n % (...) checks if value is non-float -- here (...) (see 3) is evaluated as 0 in case of false, and as 1 in case of true.

TESTS:

"0"                     : true
"23"                    : true
"-10"                   : false
"10.30"                 : false
"-40.1"                 : false
"string"                : false
"1234567890"            : true
"129000098131766699.1"  : false
"-1e10"                 : false
"1e10"                  : true
"1edf"                  : false
" "                     : false
""                      : false

DEMO: http://jsfiddle.net/5UCy4/14/


The previous version:

function isPositiveInteger(n) {
    return n == "0" || ((n | 0) > 0 && n % 1 == 0);
}

DEMO: http://jsfiddle.net/5UCy4/2/

share|improve this answer
    
This is absolutely the best solution –  Cfreak May 31 '12 at 14:42
    
Try an empty string or a large number such as 1290000981231123.1 - jsfiddle.net/5UCy4/1 –  Niko May 31 '12 at 14:45
1  
@Niko Answer has since been updated, works now ;) –  Izkata May 31 '12 at 18:09
1  
+1, this is simple, straightforward, and doesn't over-complicate the issue. –  Izkata May 31 '12 at 18:10
1  
+1... But what the val|0 does? –  gdoron May 31 '12 at 20:53

(~~a == a) where a is the string.

share|improve this answer
    
This will fail for negative numbers: ~~"-1" == "-1" will return true. And OP asked for only positive integers. –  igor milla Jun 17 at 14:03
    
Also fails for '' and ' '. –  neverfox Dec 1 at 6:35

protected by VisioN Feb 9 '13 at 23:19

Thank you for your interest in this question. Because it has attracted low-quality answers, posting an answer now requires 10 reputation on this site.

Would you like to answer one of these unanswered questions instead?

Not the answer you're looking for? Browse other questions tagged or ask your own question.