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this works as expected

[97,98].map(function(x){String.fromCharCode(x)})
// [ 'a', 'b' ]

but the output is following line is unexpected

[97,98].map(String.fromCharCode)
// [ 'a\u0000\u0000', 'b\u0001\u0000' ]
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The first one returns me [undefined, undefined] and the second one ["a", "b"] in the Chrome console, where did you test ? –  Calvein Jul 6 '12 at 13:52
    
@Calvein firefox gives ["a\x00\x00", "b\x01\x00"], chrome gives ["a", "b"] both give the same but chrome just doesn't print control characters –  Esailija Jul 6 '12 at 14:00
    
I used JSON.stringify to ensure the output showed me the control characters. –  Niet the Dark Absol Jul 6 '12 at 14:03
    
@Calvein it was tested in the coffeescript REPL, I forgot the return statement when translate it to javascript.. –  Feng Jul 6 '12 at 14:14
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2 Answers

up vote 3 down vote accepted

String.fromCharCode can accept a variable length of arguments, and treats each one as a character code to build a string arguments.length characters long.

map passes several arguments to the inner function. The first, obviously, is the value of the current item. The second is the index in the array, which is where the \u0000 and \u0001 come from (add more character codes and you get \u0002, \u0003...). The third argument is a reference to the array that is being traversed, which is converted to the number 0.

Source: https://developer.mozilla.org/en/JavaScript/Reference/Global_Objects/Array/map

EDIT much, much later: An alternative approach:

String.fromCharCode.apply(String, [97,98]);
// [ 'a', 'b' ]
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The article A JavaScript Optional Argument Hazard explores what is going on in situations like this. –  Allen Wirfs-Brock Jul 6 '12 at 16:26
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       a2 = [97,98].map(function(x){return String.fromCharCode(x)});
       alert(a2);
       a2 = [97,98].map(String.fromCharCode);
       alert(a2);

both alert "a,b" for Firefox13 on Linux. the first function was missing a return statement.

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