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From the Mozilla Dev Site:

[1,4,9].map(Math.sqrt)

will yield:

[1,2,3]

Why then does this:

['1','2','3'].map(parseInt)

yield this:

[1, NaN, NaN]

I have tested in Firefox 3.0.1 and Chrome 0.3 and just as a disclaimer, I know this is not cross-browser functionality. (No IE)

[edit] I found out that the following will accomplish the desired effect. However, it still doesn't explain the errant behavior of parseInt.

['1','2','3'].map(function(i){return +i;}) // returns [1,2,3]
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5  
For lazy's: use .map(parseFloat) because it takes ony one parameter. –  2astalavista Aug 31 '13 at 11:29
9  
Or use .map(Number). –  Nikolai Sep 22 '13 at 17:26
    
you can arr.map(Math.floor) if you want Integers without a hand-rolled function. –  dandavis Oct 2 at 22:57

4 Answers 4

up vote 158 down vote accepted

The callback function in Array.map has three parameters:

From the same Mozilla page that you linked to:

callback is invoked with three arguments: the value of the element, the index of the element, and the Array object being traversed."

So if you call a function which actually expects two arguments, the second argument will be the index of the element.

In this case, you ended up calling parseInt with radix 0, 1 and 2 in turn. The first is the same as not supplying the parameter, so it defaulted to base 10. Base 1 is an impossible number base, and 3 is not a valid number in base 2:

parseInt('1', 0); // OK - gives 1
parseInt('2', 1); // FAIL - 1 isn't a legal radix
parseInt('3', 2); // FAIL - 3 isn't legal in base 2 
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Nice detail, Alnitak! This definitely corroborates my findings. Thanks for this response. Voted up! –  Peter Bailey Nov 4 '08 at 17:04
    
Excellent answer, thanks! –  Billy Moon Feb 4 '13 at 15:27

I'm going to wager that it's something funky going on with the parseInt's 2nd parameter, the radix. Why it is breaking with the use of Array.map and not when you call it directly, I do not know.

//  Works fine
parseInt( 4 );
parseInt( 9 );

//  Breaks!  Why?
[1,4,9].map( parseInt );

//  Fixes the problem
[1,4,9].map( function( num ){ return parseInt( num, 10 ) } );
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parseInt only assumes octal if the supplied string starts with a 0 character. –  Alnitak Nov 4 '08 at 16:56
    
Oh ya... that's right. It tries to "guess" the radix based on the input. Sorry about that. –  Peter Bailey Nov 4 '08 at 16:59

Quick fix:

['10', '10', '10', '10', '10'].map(parseInt.bind(null, 10))
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1  
This is actually a great answer, solving this problem in a functional way. You can also do this with underscorejs underscorejs.org/#partial ['1','2','3'].map(_.partial(parseInt,_,10)); –  Meekohi Apr 2 at 22:22
6  
['1', '2', '3', '4', '5'].map(parseInt.bind(null, 10)) returns [NaN, 2, 3, 4, 5] –  Maxence Jun 27 at 16:43
4  
This doesn't work. The radix and string parameters are the wrong way round. –  fgb Aug 3 at 22:18
    
bind() creates a new function with a different this (here null) and can prepend arguments (here 10). You are in fact mapping on parseInt(10, array_element), which won't work for small and large numbers. ['0', '1', '2', '10', '15', '57'].map(parseInt.bind(null, 10)) gives [10, NaN, 2, 10, 15, NaN]. Details about the bind –  Eric Darchis Sep 22 at 9:34
    
Is there a way to make this work for ['10','1','100']? –  Sleep Deprived Bulbasaur Nov 5 at 14:38

map is passing along a 2nd argument, which is (in many of the cases) messing up parseInt's radix parameter.

If you're using underscore you can do:

['10','1','100'].map(_.partial(parseInt, _, 10))

Or without underscore:

['10','1','100'].map(function(x) { return parseInt(x, 10); });

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The latter is much clearer than any of the other plain-js answers. –  mikebridge Nov 13 at 23:26

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