I have an array like this:

[
    {
        id: "1233",
        parentId: "5436"
    },
    {
        id: "5436",
        parentId: "5664"
    },
    ...
]

it is a representation of a tree, with children and parents. So it is actually an array of objects with each object having an id and a parent id.

I want to create a function, preferably using ES6 to search for all children (not only direct children but also children of children) for an element given an id.

Alternative, it would be nice to have a function to convert this array into a more convenient form, like an array of objects with an id and a children array.

I have used the following function for the search:

function searchForChildren(parentId, tree) {
const children = [];
tree.forEach(element => {
    if (element.parentUid === parentId) {
        children.push(element);
    }
});
for (const child of children) {
    const childrenTemp = searchForChildren(child.id, tree);
    children.concat(childrenTemp);
}
return children;
}

Sample data would be like:

 0: {id: "7020441", parentUid: "2442074"}
 1: {id: "7020438", parentUid: "2442077"}
 2: {id: "7020435", parentUid: "2442079"}
 3: {id: "7020437", parentUid: "2442079"}
 4: {id: "7013749", parentUid: "2442086"}
 5: {id: "7013750", parentUid: "2442086"}
 6: {id: "7013752", parentUid: "2442086"}
 7: {id: "7013753", parentUid: "2442086"}
 8: {id: "7013751", parentUid: "2442086"}
 9: {id: "7013746", parentUid: "2442089"}
 10: {id: "7013747", parentUid: "2442089"}
 11: {id: "7013765", parentUid: "2442092"}
 12: {id: "7013767", parentUid: "2442092"}
 13: {id: "7013768", parentUid: "2442092"}
 14: {id: "7013765", parentUid: "2442092"}
 15: {id: "7013767", parentUid: "2442092"}
 16: {id: "7013768", parentUid: "2442092"}
 17: {id: "7013765", parentUid: "2442092"}
 18: {id: "7013767", parentUid: "2442092"}
 19: {id: "7013768", parentUid: "2442092"}
 20: {id: "7013765", parentUid: "2442092"}
 21: {id: "7013767", parentUid: "2442092"}
 22: {id: "7013768", parentUid: "2442092"}
 23: {id: "7013765", parentUid: "2442092"}
 24: {id: "7013767", parentUid: "2442092"}
 25: {id: "7013768", parentUid: "2442092"}
 26: {id: "7013765", parentUid: "2442092"}
 27: {id: "7013767", parentUid: "2442092"}
 28: {id: "7013768", parentUid: "2442092"}
 29: {id: "7013765", parentUid: "2442092"}
 30: {id: "7013767", parentUid: "2442092"}
 31: {id: "7013768", parentUid: "2442092"}
 32: {id: "7013765", parentUid: "2442092"}
 33: {id: "7013767", parentUid: "2442092"}
 34: {id: "7013768", parentUid: "2442092"}
 35: {id: "7013765", parentUid: "2442092"}
 36: {id: "7013767", parentUid: "2442092"}
 37: {id: "7013768", parentUid: "2442092"}
 38: {id: "7013765", parentUid: "2442092"}
 39: {id: "7013767", parentUid: "2442092"}
 40: {id: "7013768", parentUid: "2442092"}
 41: {id: "7013765", parentUid: "2442092"}
 42: {id: "7013767", parentUid: "2442092"}
 43: {id: "7013768", parentUid: "2442092"}
 44: {id: "7013765", parentUid: "2442092"}
 45: {id: "7013767", parentUid: "2442092"}
 46: {id: "7013768", parentUid: "2442092"}
 47: {id: "2442074", parentUid: ""}
 48: {id: "2442075", parentUid: "2442074"}
 49: {id: "2442076", parentUid: "2442075"}
 50: {id: "2442077", parentUid: "2442076"}
 51: {id: "2442078", parentUid: "2442076"}
 52: {id: "2442079", parentUid: "2442075"}
 53: {id: "2442080", parentUid: "2442075"}
 54: {id: "2442081", parentUid: "2442075"}
 55: {id: "2442082", parentUid: "2442074"}
 56: {id: "2442083", parentUid: "2442074"}
 57: {id: "2442084", parentUid: "2442074"}
 58: {id: "2442085", parentUid: "2442084"}
 59: {id: "2442086", parentUid: "2442084"}
 60: {id: "2442087", parentUid: "2442084"}
 61: {id: "2442088", parentUid: "2442084"}
 62: {id: "2442089", parentUid: "2442088"}
 63: {id: "2442090", parentUid: "2442074"}
 64: {id: "2442091", parentUid: "2442090"}
 65: {id: "2442092", parentUid: "2442091"}
 66: {id: "2442092", parentUid: "2442091"}
 67: {id: "2442092", parentUid: "2442091"}
 68: {id: "2442091", parentUid: "2442090"}
 69: {id: "2442092", parentUid: "2442091"}
 70: {id: "2442092", parentUid: "2442091"}
 71: {id: "2442092", parentUid: "2442091"}
 72: {id: "2442091", parentUid: "2442090"}
 73: {id: "2442092", parentUid: "2442091"}
 74: {id: "2442092", parentUid: "2442091"}
 75: {id: "2442092", parentUid: "2442091"}
 76: {id: "2442091", parentUid: "2442090"}
 77: {id: "2442092", parentUid: "2442091"}
 78: {id: "2442092", parentUid: "2442091"}
 79: {id: "2442092", parentUid: "2442091"}
 80: {id: "2442093", parentUid: "2442090"}
 81: {id: "2442094", parentUid: "2442074"}
 82: {id: "2442095", parentUid: "2442074"}
  • It seems you have a flat list here not a nested one. If that is the case just do a linear search or binary search if you know the lower and upper limit of id. – SomeDude Nov 8 at 16:12
  • can you share the list with atleast a few more objects – brk Nov 8 at 16:13
  • 1
    And show us what you have tried. Stackoverflow is not a free code writing service. The objective here is to help fix your code. Showing your attempts will get you a higher level of assistance as ooposed to expecting others to do it all from scratch – charlietfl Nov 8 at 16:13
  • Please edit the question rather than putting the code in your comments – Pete Nov 8 at 16:16
up vote 1 down vote accepted

You had the right idea to use recursion. Your only mistake is that you're using children.concat(childrenTemp) which doesn't do anything to the original array. Instead use children.push(...childrenTemp).

Here's the fixed version:

const data = [{
    id: "2442086",
    parentUid: "2442074"
  },
  {
    id: "7020438",
    parentUid: "2442077"
  },
  {
    id: "7020435",
    parentUid: "2442079"
  },
  {
    id: "7020437",
    parentUid: "2442079"
  },
  {
    id: "2442092",
    parentUid: "2442086"
  },
  {
    id: "7013750",
    parentUid: "2442086"
  },
  {
    id: "7013752",
    parentUid: "2442086"
  },
  {
    id: "7013753",
    parentUid: "2442086"
  },
  {
    id: "7013751",
    parentUid: "2442086"
  },
  {
    id: "7013746",
    parentUid: "2442089"
  },
  {
    id: "7013747",
    parentUid: "2442089"
  },
  {
    id: "7013765",
    parentUid: "2442092"
  },
  {
    id: "7013767",
    parentUid: "2442092"
  },
  {
    id: "7013768",
    parentUid: "2442092"
  },
  {
    id: "7013765",
    parentUid: "2442092"
  },
  {
    id: "7013767",
    parentUid: "2442092"
  },
  {
    id: "7013768",
    parentUid: "2442092"
  },
  {
    id: "7013765",
    parentUid: "2442092"
  },
  {
    id: "7013767",
    parentUid: "2442092"
  },
  {
    id: "7013768",
    parentUid: "2442092"
  },
  {
    id: "7013765",
    parentUid: "2442092"
  },
  {
    id: "7013767",
    parentUid: "2442092"
  },
  {
    id: "7013768",
    parentUid: "2442092"
  },
  {
    id: "7013765",
    parentUid: "2442092"
  },
  {
    id: "7013767",
    parentUid: "2442092"
  },
  {
    id: "7013768",
    parentUid: "2442092"
  },
  {
    id: "7013765",
    parentUid: "2442092"
  },
  {
    id: "7013767",
    parentUid: "2442092"
  }
];


function searchForChildren(parentId, tree) {
  const children = [];
  tree.forEach(element => {
    if (element.parentUid === parentId) {
      children.push(element);
    }
  });
  for (const child of children) {
    const childrenTemp = searchForChildren(child.id, tree);
    children.push(...childrenTemp);
  }
  return children;
}

console.log(searchForChildren("2442092", data));
console.log(searchForChildren("2442086", data));

From the docs:

The concat() method is used to merge two or more arrays. This method does not change the existing arrays, but instead returns a new array.

I would create an index to reduce the search complexity from O(n) to O(1). For a big dataset this will make a big difference in execution time.

var index = {}, index_parent = {}, obj;
for (var i in myArray) {
  obj = myArray[i];
  index[obj.id] = obj;

  if (index_parent.hasOwnProperty(obj.parentUid)) {

    index_parent[obj.parentUid].push(obj.id);
  } else {
    index_parent[obj.parentUid] = [obj.id];
  }
}

then do breath first search

function getChildren_BFS (id_parent) {
  var out = [], qu = [], node, children;
  out.push(index[id_parent]); // this can be commented out if you don't need the root

  qu.push(id_parent);

  for (var current = 0; qu.length > current; ) {

    node = qu[current++];

    children = index_parent[node];

    if (children) {
      qu = qu.concat(children);

      children.forEach((e) => {out.push(index[e]);});
    }
  }

  return out;
}

var myArray = [{id: "7020441", parentUid: "2442074"}
,{id: "7020438", parentUid: "2442077"}
,{id: "7020435", parentUid: "2442079"}
,{id: "7020437", parentUid: "2442079"}
,{id: "7013749", parentUid: "2442086"}
,{id: "7013750", parentUid: "2442086"}
,{id: "7013752", parentUid: "2442086"}
,{id: "7013753", parentUid: "2442086"}
,{id: "7013751", parentUid: "2442086"}
,{id: "7013746", parentUid: "2442089"}
,{id: "7013747", parentUid: "2442089"}
,{id: "7013765", parentUid: "2442092"}
,{id: "7013767", parentUid: "2442092"}
,{id: "7013768", parentUid: "2442092"}
,{id: "2442074", parentUid: ""}
,{id: "2442075", parentUid: "2442074"}
,{id: "2442076", parentUid: "2442075"}
,{id: "2442077", parentUid: "2442076"}
,{id: "2442078", parentUid: "2442076"}
,{id: "2442079", parentUid: "2442075"}
,{id: "2442080", parentUid: "2442075"}
,{id: "2442081", parentUid: "2442075"}
,{id: "2442082", parentUid: "2442074"}
,{id: "2442083", parentUid: "2442074"}
,{id: "2442084", parentUid: "2442074"}
,{id: "2442085", parentUid: "2442084"}
,{id: "2442086", parentUid: "2442084"}
,{id: "2442087", parentUid: "2442084"}
,{id: "2442088", parentUid: "2442084"}
,{id: "2442089", parentUid: "2442088"}
,{id: "2442090", parentUid: "2442074"}
,{id: "2442092", parentUid: "2442091"}
,{id: "2442091", parentUid: "2442090"}
,{id: "2442093", parentUid: "2442090"}
,{id: "2442094", parentUid: "2442074"}
,{id: "2442095", parentUid: "2442074"}];

var index = {}, index_parent = {}, obj;
myArray.forEach((obj) => {

  index[obj.id] = obj;

  if (index_parent.hasOwnProperty(obj.parentUid)) {

    index_parent[obj.parentUid].push(obj.id);
  } else {
    index_parent[obj.parentUid] = [obj.id];
  }
});

console.log( getChildren_BFS("2442084") );
console.log( getChildren_BFS("2442074") );

It needs to be improved on the memory footprint side.

EDIT: Here is the same getChildren using depth first search just by changing the queu for a stack.

function getChildren_DFS (id_parent) {
  var out = [], stack = [], node, children;
  out.push(index[id_parent]); // this can be commented out if you don't need the root

  stack.push(id_parent);

  while (stack.length > 0) {

    node = stack.pop();

    children = index_parent[node];

    if (children) {
      children.forEach((e) => {stack.push(e);});

      children.forEach((e) => {out.push(index[e]);});
    }
  }

  return out;
}
  • Good idea to use an index, it is actually solving both my questions, find all children and transform the array into a more convenient form. But the code is hard to follow for someone who wants to understand in a blink what's going on. – Theodosios Asvestopoulos Nov 9 at 12:32
  • @TheodosiosAsvestopoulos I've added a DFS version of the search. – Dominique Fortin Nov 9 at 14:59

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