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console.log("1,2,3".split(",").map(parseInt))

prints

[1, NaN, NaN]

why?

Adding some more unnecessary text here to make this question "meet SO quality standards", whatever that means.

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marked as duplicate by apsillers Dec 3 at 15:21

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

3 Answers 3

.map calls parseInt() with two parameters - the value, and the array index:

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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Thanks! Yet another javascript gotcha. –  georg Dec 21 '11 at 18:45
1  
it's only a gotcha if you don't read the manual... –  Alnitak Dec 21 '11 at 18:54
1  
a documented gotcha, aka counter-intuitive behavior, is still a gotcha. Have a read: wirfs-brock.com/allen/posts/166 –  georg Dec 21 '11 at 19:02

.map calls parseInt() with three parameters - the value, the array index and the whole array instance.

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up vote 2 down vote accepted

This is discussed in much detail here: http://www.wirfs-brock.com/allen/posts/166. Proposed solutions to this problem, along with the obvious

a.map(function(e) { return parseInt(e, 10)})

also include the Number constructor:

a.map(Number)

or a solution based on partial application (see http://msdn.microsoft.com/en-us/scriptjunkie/gg575560 for more):

Function.prototype.partial = function(/*args*/) {
    var a = [].slice.call(arguments, 0), f = this;
    return function() {
        var b = [].slice.call(arguments, 0);
        return f.apply(this, a.map(function(e) {
            return e === undefined ? b.shift() : e;
        }));
    }
};

["1", "2", "08"].map(parseInt.partial(undefined, 10))
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