1

How come

var a = "foo /    bar/  baz  ".split('/');

a.map( function (e) { return String.prototype.trim.call(e) } )

works, while this doesn't...

a.map( String.prototype.trim );
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  • may be this helps.. stackoverflow.com/questions/21186398/… – Sudhir Bastakoti Jan 5 '15 at 9:42
  • 1
    The answers are useful, but to keep yourself sane, you could also just do a.map(function(e) { return e.trim(); }). – user663031 Jan 5 '15 at 10:44
  • possible duplicate of JS Array.prototype.filter on prototype method – user663031 Jan 5 '15 at 11:57
  • As pointed out in the question suggested as duplicate, one elegant solution is a.map(Function.call, "".trim). – user663031 Jan 5 '15 at 11:58
  • 1
    Or, you could simply do split(/\s*\/\s*/) and save yourself the mapping/trimming trouble. – user663031 Jan 5 '15 at 12:07
1

Try this:

a.map(Function.prototype.call.bind(String.prototype.trim ))

The reason why this works and just mapping String.prototype.trim doesn't work is because, as others have pointed out, the this will be undefined when the function tries to trim the array element. What this solution does is, it creates a new function, which takes as it's this value as the function String.prototype.trim. Since the new function is a modified version of Function.prototype.call, as map calls this function passing it the array element, what essentially gets executed is: Function.prototype.call.call(String.prototype.trim, element). This runs the function String.prototype.trim on the element passed in and you get the trimmed result. This also would work:

 a.map(Function.call, "".trim)

by taking advantage of the fact that the second argument to map accepts the thisArg. For a little bit of syntactic sugar, you can make a function that looks like this:

Array.prototype.mapUsingThis = function(fn) { return this.map(Function.call, fn); };

Then, you could just invoke

a.mapUsingThis("".trim)

like that.

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0

String.prototype.trim is a non params function, it will be called by string itself, but map function need a func arg accept a str as params

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  • yeah but the param is still necessary because it is going to be used as context – t31321 Jan 5 '15 at 9:40
0

'this' refers to the string param in the first case whereas in the second case, 'this' becomes undefined as String.prototype.trim is not bound to any object.

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