77

I'm trying to override a built in parseFloat function in js. How would I go about doing that?

  • 8
    i wouldn't recommend doing that. perhaps create another function within the prototype? – KJYe.Name Mar 23 '11 at 17:47
  • You could just do function parseFloat() {}, but there is as far as I know no way to actually call the native version then. – pimvdb Mar 23 '11 at 17:50
  • Namespaces..... – iwasrobbed Mar 23 '11 at 17:51
  • Overriding function is very common practice. – Jerry Liang Feb 12 '15 at 23:40
186
var origParseFloat = parseFloat;
parseFloat = function(str) {
     alert("And I'm in your floats!");
     return origParseFloat(str);
}
  • 48
    +1 for backing up the original parseFloat – Rocket Hazmat Mar 23 '11 at 17:50
  • 1
    Your string is broken :) – Marcelo Mar 23 '11 at 17:52
  • 2
    @David Waters: I'm afraid your current code alerts forever in Chrome. – pimvdb Mar 23 '11 at 17:55
  • 9
    @David Keep in mind that function are hoisted, which mean that origParseFloat points to the function you declare right after. This would work. – HoLyVieR Mar 23 '11 at 17:58
  • 1
    @HoLyVieR thanks Fixed by assigning function to name answer updated see jsfiddle.net/huZG2/6 – David Waters Mar 23 '11 at 18:30
36

You can override any built-in function by just re-declaring it.

parseFloat = function(a){
  alert(a)
};

Now parseFloat(3) will alert 3.

8

You can do it like this:

alert(parseFloat("1.1531531414")); // alerts the float
parseFloat = function(input) { return 1; };
alert(parseFloat("1.1531531414")); // alerts '1'

Check out a working example here: http://jsfiddle.net/LtjzW/1/

3

You could override it or preferably extend it's implementation like this

parseFloat = (function(_super) {
    return function() {
        // Extend it to log the value for example that is passed
        console.log(arguments[0]);
        // Or override it by always subtracting 1 for example
        arguments[0] = arguments[0] - 1;
        return _super.apply(this, arguments);
    };         

})(parseFloat);

And call it as you would normally call it:

var result = parseFloat(1.345); // It should log the value 1.345 but get the value 0.345

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