13

I have implemented a curry function this way:

function curry (fn) {
    var slice = Array.prototype.slice,
        args = slice.apply(arguments, [1]);
    return function () {
        fn.apply(null, args.concat(slice.apply(arguments)));
    };
}

When I use the above function to do the following

function add (x, y) {
    return x + y;
}

var inc = curry(add, 1);
console.log(inc(10));

it logs undefined. Isn't 11 the expected output? What is wrong with my code?

Note: Using console.log(x, y) inside the add function logs 1 10. I don't understand why it returns undefined.

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  • 2
    Actually is not curry, it's partial application. – jcubic Sep 20 '13 at 19:55
  • I know I'm reviving a really old thread, but what does applying [1] as the argument to arguments accomplish? – Charlie G Dec 31 '13 at 14:54
  • 1
    It removes the passed function from the arguments list! – monoceres Feb 26 '14 at 15:01
13

You're missing a return in your curry function.

I.e.

return function () {
    return fn.apply(null, args.concat(slice.apply(arguments)));
};

That seems to work :)

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  • 3
    the correct term for this is partial application of a function - not strictly currying...but still good! – Chii Dec 9 '10 at 4:19
12

This is an example of curry function:

function curry(func) {
    var initial_args = [].slice.apply(arguments, [1]);
    var func_args_length = func.length;

    function curried(args) {
        if (args.length >= func_args_length) {
            return func.apply(null, args);
        }

        return function () {
            return curried(args.concat([].slice.apply(arguments)));
        };
    }

    return curried(initial_args);
}

This curry function creates a curried version of any function. You can partially apply parameters to the new function. For each partial application, it will return a function that takes the rest of the parameters. Once all parameters of the original function are applied, it will return a value.

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