25

I have an array of strings. I want to trim each string in the array.

I thought using [].map() with ''.trim() would work...

[' a', ' b   ', 'c'].map(String.prototype.trim);

...but my console said...

TypeError: String.prototype.trim called on null or undefined

jsFiddle.

I can't see any null or undefined values in my array.

String.prototype.trim() and Array.prototype.map() are defined in Chrome 17, which I'm using to test.

Why doesn't this work? I get the feeling I have overlooked something obvious.

I realise I could loop or drop a function in there. That's not the point of this question, however.

0

4 Answers 4

35

What @Slace says is the right explanation. @ThomasEding's answer also works but has one terrible inefficieny that it may create functions within a loop, which is not a good thing to do.

Another way of doing would be (reference here):

[' a', ' b   ', 'c'].map(Function.prototype.call, String.prototype.trim);  
// gives ["a", "b", "c"]

Standard browser disclaimer: This will work wherever Function.prototype.call and String.prototype.trim will work and for older browsers, you can easily substitute trim with a polyfill like this:

if(!String.prototype.trim) {  
  String.prototype.trim = function () {  
    return this.replace(/^\s+|\s+$/g,'');  
  };  
}

Update: Interstingly, while this works fastest in Chrome, @ThomasEding's method runs slightly faster in IE10 and FF20 - http://jsperf.com/native-trim-vs-regex-trim-vs-mixed

2
  • 1
    I'm pretty sure that @ThomasEdig's answer does not create more than one function. I'm assuming the map function accepts a function reference and then calls it once per iteration. The function itself is created once and then passed to the map function--just like jQuery's implementation of map: james.padolsey.com/jquery/#v=1.7.2&fn=jQuery.map Commented Apr 25, 2013 at 15:49
  • Yeah... From my tests, that appears to be true. I'll do the corrections.
    – Mrchief
    Commented Apr 25, 2013 at 15:52
25

That's because trim is not being called with the proper this context. Remember that this is dynamically bound in JS. You will have to create a wrapper to pass to trim to properly bind this:

[' a', ' b   ', 'c'].map(function (str) {
  return str.trim();
});
6
  • 2
    Thanks for answering. I think I've been using jQuery's $.trim() too often.
    – alex
    Commented Feb 16, 2012 at 1:05
  • This is almost perfect except for the fact that you're creating functions in a loop.
    – Mrchief
    Commented Apr 24, 2013 at 16:25
  • 2
    @Mrchief: The above code does not do that. It would if you took my existing code and tossed it within a loop... Commented Apr 24, 2013 at 17:19
  • You're already in a loop when you're iterating thru the array. :) How do you think map is implemented? es5.github.io/#x15.4.4.19
    – Mrchief
    Commented Apr 24, 2013 at 18:03
  • 4
    @Mrchief: That is one way to implement map. Another is via recursion. In either case, how map is implemented is moot. The function is created only once in this case. Then a pointer to the function is passed into map, and map uses the same reference as it does its work. Commented Apr 24, 2013 at 19:08
20

trim is on the String prototype, meaning that it expects the this context to be that of a string where as the map method on Array provides the current array item as the first argument and the this context being the global object.

4
  • Exactly! I knew it would be something obvious. My brain isn't working today. Thanks Slace.
    – alex
    Commented Feb 16, 2012 at 0:59
  • 3
    So why does this not work? [' a', ' b ', 'c'].map(String.prototype.trim.apply); ... and why does this work outside the map() context? String.prototype.trim(' a ') (note that it doesn't actually work - returns an empty string - but it doesn't throw an error either.) Commented Feb 16, 2012 at 1:09
  • 5
    @nrabinowitz: apply's this doesn't get bound to String.prototype.trim - it gets bound to undefined or null or window. (This is why they invented Function.bind().)
    – Ry-
    Commented Feb 16, 2012 at 1:11
  • I was a bit slow with getting Ryan's comment at first, but I found this helpful.
    – Chris
    Commented Sep 23, 2016 at 18:15
3

With ES6 syntax it can be as easy as this:

[' hello  ', '  world'].map(str => str.trim());
1
  • 1
    This is the best way of doing it in 2017. Let's see what happens in 2018 :D
    – The Onin
    Commented Dec 3, 2017 at 15:39

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