5

I ran into this problem, I was able to write solution which can handle array of object (not posted here) or one level deep nested object but i couldn't solve when the given object has nested structure like below. I am curious to know how we can solve this.

const source = {
  a: 1,
  b: {
    c: true,
    d: {
      e: 'foo'
    }
  },
  f: false,
  g: ['red', 'green', 'blue'],
  h: [{
    i: 2,
    j: 3
  }]
};

solution should be

const solution = {
    'a': 1,
    'b.c': true,
    'b.d.e': 'foo',
    'f': false,
    'g.0': 'red',
    'g.1': 'green',
    'g.2': 'blue',
    'h.0.i': 2,
    'h.0.j': 3
};

attempt for one deep nested object

let returnObj = {}

let nestetdObject = (source, parentKey) => {

    let keys = keyFunction(source);

    keys.forEach((key) => {
      let values = source[key];

      if( typeof values === 'object' && values !== null ) {
        parentKey = keys[0]+'.'+keyFunction(values)[0]
        nestetdObject(values, parentKey);
      }else{
        let key = parentKey.length > 0 ? parentKey : keys[0];
        returnObj[key] = values;
      }
    })
    return returnObj
};

// Key Extractor 
let keyFunction = (obj) =>{
  return Object.keys(obj);
}

calling the function

nestetdObject(source, '')

But my attempt will fail if the object is like { foo: { boo : { doo : 1 } } }.

13

You should be able to do it fairly simply with recursion. The way it works, is you just recursively call a parser on object children that prepend the correct key along the way down. For example (not tested very hard though):

const source = {
  a: 1,
  b: {
    c: true,
    d: {
      e: 'foo'
    }
  },
  f: false,
  g: ['red', 'green', 'blue'],
  h: [{
    i: 2,
    j: 3
  }]
}

const flatten = (obj, prefix = '', res = {}) => 
  Object.entries(obj).reduce((r, [key, val]) => {
    const k = `${prefix}${key}`
    if(typeof val === 'object'){ 
      flatten(val, `${k}.`, r)
    } else {
      res[k] = val
    }
    return r
  }, res)
 
console.log(flatten(source))

| improve this answer | |

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.