6

I have an object which looks like this:

const object = {
head: 1,
eyes: 2,
arms: 2,
legs: 3
}

I want to loop over this object and this and log out each key name e.g. eyes for the amount of the value.

this would result in:

head
eyes
eyes
arms
arms 
legs 
legs
legs

Currently I have this solution but it feels like it could be done more neatly and readible.

Object.keys(object)
  .map(key => {
    return [...Array(object[key])].map( (_, i) => {
      return console.log(key)
   })

Any suggestions?

4

You could use Object.entries() and map() method and return new array.

const object = {head: 1,eyes: 2,arms: 2,legs: 3}

const res = [].concat(...Object.entries(object).map(([k, v]) => Array(v).fill(k)))
console.log(res)

Or you could use reduce() with spread syntax in array.

const object = {head: 1,eyes: 2,arms: 2,legs: 3}

const res = Object
  .entries(object)
  .reduce((r, [k, v]) => [...r, ...Array(v).fill(k)], [])
  // Or you can use push instead
  // .reduce((r, [k, v]) => (r.push(...Array(v).fill(k)), r), [])

console.log(res)

3
 Object.entries(object)
  .forEach(([key, times]) => console.log((key + "\n").repeat(times)));

One may use String.prototype.repeat...

  • 2
    Why not just put it in a built-in snippet if you want to show how it works? – jfriend00 Dec 23 '17 at 17:33
2

"...it feels like it could be done more neatly and readible."

Recursion makes it pretty clean and understandable.

const object = {
  head: 1,
  eyes: 2,
  arms: 2,
  legs: 3
};

Object.entries(object).forEach(function f([k,v]) {
  if (v) {
    console.log(k);
    f([k, --v]);
  }
})
  


You can rearrange things a bit if you know the value will always be greater than 0.

const object = {
  head: 1,
  eyes: 2,
  arms: 2,
  legs: 3
};

Object.entries(object).forEach(function f([k,v]) {
  console.log(k);
  if (--v) f([k, v]);
})

  • 1
    While this is not much cleaner, its at least creative ;) – Jonas Wilms Dec 23 '17 at 17:29

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.