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Editorial Team
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Asked: 2026-05-20T18:37:24+00:00

String.prototype.parse = function(f) { alert(this.replace(f, )); }; var a = Hello World; parse.apply(a, [Hello]);

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String.prototype.parse = function(f) {
    alert(this.replace(f, ""));
};
var a = "Hello World";
parse.apply(a, ["Hello"]);

Is the code correct?

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1 Answer

  1. Editorial Team

    No, that’s not correct. The function is defined as String.prototype.parse, so it is not available as parse (in fact, parse is undefined).

    You could run it like the following:

    String.prototype.parse.apply(a, ["Hello"]);

    But actually, the reason why you add the function to the prototype of String is that you extend String objects with that function. So you actually should just run the function like this:

    a.parse("Hello");

    edit:

    Oh, and in response to your question title “Why does this function return as undefined?”: The function doesn’t return anything, because you don’t tell the function to return anything. You could for example define it like this to return the replaced string (instead of alerting it):

    String.prototype.parse = function(f) {
    return this.replace(f, "");
};

    And then you could alert the return value of the function:

    alert(a.parse("Hello"));
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