4

Question: How would you make this work?
add(2)(5); // 7
add(2, 5); // 7

I am trying to solve the question above: I know that the first solution uses currying and would be implemented as follows:

var add = functoin(x){
return function (y){
return x+y;
};
};

while the second is jsut your normal function:

var add = functoin(x,y){
return x+y;
};

Is there a way to make both work at the same time?

3

You can use a higher-order function to wrap other functions with that behaviour.

This kind of function is often called curry, and it comes with many libraries (lodash, for example).

curry returns a new function that checks whether all the expected arguments have been supplied. If they have, it calls originalFunction. If not, it returns a partially applied function,

This implementation uses Function#length to test call arity, so it works with any number of arguments.

function curry (fn) {
  return function (...args) {
    if (args.length >= fn.length) {
      return fn.call(this, ...args)
    } else {
      return curry(fn.bind(this, ...args))
    }
  }
}

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

// You can curry any function!
const curriedAdd = curry(add);

console.log(curriedAdd(1, 2)); // 3
console.log(curriedAdd(1)(2)); // 3
console.log(curriedAdd(1));    // a function

2
  • 2
    Bear in mind that Function#length doesn't include optional arguments, and this implementation doesn't do anything special to help with this - like usual, it's determined by how the curried function is called. – joews Feb 5 '17 at 23:39
  • 2
    If you want to do real currying that works for more than 2 parameters, you should do return curry(fn.bind(null, ...args)) – Bergi Feb 5 '17 at 23:43
3

You could inspect the amount of arguments passed in and return one or the either depending on it:

function add(a, b) {
  if (arguments.length == 2) {
    return a + b;
  }
  return function(b) {
    return add(a, b);
  }
}

console.log(add(2)(5)); // 7
console.log(add(2, 5)); // 7

2
  • Better: function(b) { return add(a, b); } so that you don't need to duplicate the code – Bergi Feb 5 '17 at 23:45
  • @Bergi yup, I actually had that first then switched it since I figured it was simpler without recursion. Switched it back now. – nem035 Feb 5 '17 at 23:46

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