I have a complex json file that I have to handle with javascript to make it hierarchical, in order to later build a tree. Every entry of the json has : id : a unique id, parentId : the id of the parent node (which is 0 if the node is a root of the tree) level : the level of depth in the tree

The json data is already "ordered". I mean that an entry will have above itself a parent node or brother node, and under itself a child node or a brother node.

Input :

{
    "People": [
        {
            "id": "12",
            "parentId": "0",
            "text": "Man",
            "level": "1",
            "children": null
        },
        {
            "id": "6",
            "parentId": "12",
            "text": "Boy",
            "level": "2",
            "children": null
        },
                {
            "id": "7",
            "parentId": "12",
            "text": "Other",
            "level": "2",
            "children": null
        },
        {
            "id": "9",
            "parentId": "0",
            "text": "Woman",
            "level": "1",
            "children": null
        },
        {
            "id": "11",
            "parentId": "9",
            "text": "Girl",
            "level": "2",
            "children": null
        }
    ],
    "Animals": [
        {
            "id": "5",
            "parentId": "0",
            "text": "Dog",
            "level": "1",
            "children": null
        },
        {
            "id": "8",
            "parentId": "5",
            "text": "Puppy",
            "level": "2",
            "children": null
        },
        {
            "id": "10",
            "parentId": "13",
            "text": "Cat",
            "level": "1",
            "children": null
        },
        {
            "id": "14",
            "parentId": "13",
            "text": "Kitten",
            "level": "2",
            "children": null
        },
    ]
}

Expected output :

{
    "People": [
        {
            "id": "12",
            "parentId": "0",
            "text": "Man",
            "level": "1",
            "children": [
                {
                    "id": "6",
                    "parentId": "12",
                    "text": "Boy",
                    "level": "2",
                    "children": null
                },
                {
                    "id": "7",
                    "parentId": "12",
                    "text": "Other",
                    "level": "2",
                    "children": null
                }   
            ]
        },
        {
            "id": "9",
            "parentId": "0",
            "text": "Woman",
            "level": "1",
            "children":
            {

                "id": "11",
                "parentId": "9",
                "text": "Girl",
                "level": "2",
                "children": null
            }
        }

    ],    

    "Animals": [
        {
            "id": "5",
            "parentId": "0",
            "text": "Dog",
            "level": "1",
            "children": 
                {
                    "id": "8",
                    "parentId": "5",
                    "text": "Puppy",
                    "level": "2",
                    "children": null
                }
        },
        {
            "id": "10",
            "parentId": "13",
            "text": "Cat",
            "level": "1",
            "children": 
            {
                "id": "14",
                "parentId": "13",
                "text": "Kitten",
                "level": "2",
                "children": null
            }
        }

    ]
}
  • 2
    There are several ways to do that, did you try anything yet? – bfavaretto Aug 2 '13 at 13:23
  • I assume that a parentId of 0 means there is no parent id and should be the top layer. – Donnie D'Amato Apr 12 '16 at 11:28
  • Usually these kind of tasks required extensive working knowledge objects. Good question – Gangadhar Jannu Oct 14 at 11:14

17 Answers 17

up vote 78 down vote accepted

There is an efficient solution if you use a map-lookup. If the parents always come before their children you can merge the two for-loops. It supports multiple roots. It gives an error on dangling branches, but can be modified to ignore them. It doesn't require a 3rd-party library. It's, as far as I can tell, the fastest solution.

function list_to_tree(list) {
    var map = {}, node, roots = [], i;
    for (i = 0; i < list.length; i += 1) {
        map[list[i].id] = i; // initialize the map
        list[i].children = []; // initialize the children
    }
    for (i = 0; i < list.length; i += 1) {
        node = list[i];
        if (node.parentId !== "0") {
            // if you have dangling branches check that map[node.parentId] exists
            list[map[node.parentId]].children.push(node);
        } else {
            roots.push(node);
        }
    }
    return roots;
}

var entries = [
    {
        "id": "12",
        "parentId": "0",
        "text": "Man",
        "level": "1"
    }, { /*...*/ }
];

console.log(list_to_tree(entries));

If you're into complexity theory this solution is Θ(n log(n)). The recursive-filter solution is Θ(n^2) which can be a problem for large data sets.

  • 23
    keep in mind that with this solution, your nodes must be ordered specifically to make sure the parents are pushed into the map first, otherwise the lookup process will error... so you either need to sort em on the level property, or you need to push them into the map first. and use a separate for loop for the lookup. (i prefer sort however when you don't have a level property the separate loops might be an option) – Sander Nov 15 '13 at 18:55
  • I found it surprising at first that having additional information, eg: a path like [1, 5, 6] where the array is the subsequent ancestors, couldn't be used efficiently in it. But looking at the code it kinda makes sens since I believe it is O(n) – Ced Apr 3 '17 at 10:44
  • 1
    Despite of the good answer, it is complex. Apply my answer for just two line codes: link – Iman Bahrampour Aug 26 '17 at 10:25
  • 3
    @iman.Bahrampour It doesn't really get any simpler than a for-loop and an if-statement. You may have condensed your code down to two lines but they're not easy to read or verify and your code complexity is Θ(n^2). Perhaps your solution is more suitable on codegolf.stackexchange.com – Halcyon Aug 28 '17 at 13:17
  • Please can you explain why this solution is Θ(n log(n)), It seems to be taking O(n) time. – amrender singh Mar 7 at 7:34

As mentioned by @Sander, @Halcyon`s answer assumes a pre-sorted array, the following does not. (It does however assume you have loaded underscore.js - though it could be written in vanilla javascript):

Code

unflatten = function( array, parent, tree ){

    tree = typeof tree !== 'undefined' ? tree : [];
    parent = typeof parent !== 'undefined' ? parent : { id: 0 };

    var children = _.filter( array, function(child){ return child.parentid == parent.id; });

    if( !_.isEmpty( children )  ){
        if( parent.id == 0 ){
           tree = children;   
        }else{
           parent['children'] = children;
        }
        _.each( children, function( child ){ unflatten( array, child ) } );                    
    }

    return tree;
}

Requirements

It assumes the properties 'id' and 'parentid' indicate ID and parent ID respectively. There must be elements with parent ID 0, otherwise you get an empty array back. Orphaned elements and their descendants are 'lost'

Example usage

//Array to convert to tree structure.
var arr = [
        {'id':1 ,'parentid' : 0},
        {'id':2 ,'parentid' : 1},
        {'id':3 ,'parentid' : 1},
        {'id':4 ,'parentid' : 2},
        {'id':5 ,'parentid' : 0},
        {'id':6 ,'parentid' : 0},
        {'id':7 ,'parentid' : 4}
];
tree = unflatten( arr );

JSFiddle

http://jsfiddle.net/LkkwH/1/

  • 2
    You can add else { parent['children'] = []; } after the first if-clause to ensure that every node has an attribute children (it'll be empty if the node is a leaf node) – Christopher Apr 12 '16 at 10:20
  • 1
    Your code snippet worked perfectly, thank you!! The only thing is: tree is never passed as an argument when calling the function recursively, so i think the line tree = typeof tree !== 'undefined' ? tree : []; can be replaced by let tree = []; – Oscar Calderon Jan 12 '17 at 13:19
  • could this be modified to allow null parent_ids instead of 0? Edit: Nevermind, I got it working by changing the id: 0 to id: null. – dlinx90 Jan 23 '17 at 8:34
  • Keep in mind that the above answer uses two loops, and hence could be improved. Since I could not find a npm module which implements a O(n) solution, I created the following one (unit tested, 100% code coverage, only 0.5 kb in size and includes typings). Maybe it helps someone: npmjs.com/package/performant-array-to-tree – Philip Stanislaus May 7 '17 at 17:42
  • 2
    For anyone interested, the code is easily converted to vanilla js: jsfiddle.net/LkkwH/853 – xec Apr 12 at 9:58

Had the same problem, but I could not be certain that the data was sorted or not. I could not use a 3rd party library so this is just vanilla Js; Input data can be taken from @Stephen's example;

function unflatten(arr) {
  var tree = [],
      mappedArr = {},
      arrElem,
      mappedElem; 

  // First map the nodes of the array to an object -> create a hash table.
  for(var i = 0, len = arr.length; i < len; i++) {
    arrElem = arr[i];
    mappedArr[arrElem.id] = arrElem;
    mappedArr[arrElem.id]['children'] = [];
  }


  for (var id in mappedArr) {
    if (mappedArr.hasOwnProperty(id)) {
      mappedElem = mappedArr[id];
      // If the element is not at the root level, add it to its parent array of children.
      if (mappedElem.parentid) {
        mappedArr[mappedElem['parentid']]['children'].push(mappedElem);
      }
      // If the element is at the root level, add it to first level elements array.
      else {
        tree.push(mappedElem);
      }
    }
  }
  return tree;
} 

JS Fiddle

Flat Array to Tree

  • in some cases mappedArr[mappedElem['parentid']]['children'] was failing as can't access to children of undefined. – Al-Mothafar Sep 6 at 13:36
  • how would I start at parent id:1 ? – vinni 2 days ago

a more simple function list-to-tree-lite

npm install list-to-tree-lite

listToTree(list)

source:

function listToTree(data, options) {
    options = options || {};
    var ID_KEY = options.idKey || 'id';
    var PARENT_KEY = options.parentKey || 'parent';
    var CHILDREN_KEY = options.childrenKey || 'children';

    var tree = [],
        childrenOf = {};
    var item, id, parentId;

    for (var i = 0, length = data.length; i < length; i++) {
        item = data[i];
        id = item[ID_KEY];
        parentId = item[PARENT_KEY] || 0;
        // every item may have children
        childrenOf[id] = childrenOf[id] || [];
        // init its children
        item[CHILDREN_KEY] = childrenOf[id];
        if (parentId != 0) {
            // init its parent's children object
            childrenOf[parentId] = childrenOf[parentId] || [];
            // push it into its parent's children object
            childrenOf[parentId].push(item);
        } else {
            tree.push(item);
        }
    };

    return tree;
}

jsfiddle

  • This was helpful for me – Al-Mothafar Sep 6 at 13:35

You can handle this question with just two line coding:

_(flatArray).forEach(f=>
           {f.nodes=_(flatArray).filter(g=>g.parentId==f.id).value();});

var resultArray=_(flatArray).filter(f=>f.parentId==null).value();

Test Online (see the browser console for created tree)

Requirements:

1- Install lodash 4 (a Javascript library for manipulating objects and collections with performant methods => like the Linq in c#) Lodash

2- A flatArray like below:

    var flatArray=
    [{
      id:1,parentId:null,text:"parent1",nodes:[]
    }
   ,{
      id:2,parentId:null,text:"parent2",nodes:[]
    }
    ,
    {
      id:3,parentId:1,text:"childId3Parent1",nodes:[]
    }
    ,
    {
      id:4,parentId:1,text:"childId4Parent1",nodes:[]
    }
    ,
    {
      id:5,parentId:2,text:"childId5Parent2",nodes:[]
    }
    ,
    {
      id:6,parentId:2,text:"childId6Parent2",nodes:[]
    }
    ,
    {
      id:7,parentId:3,text:"childId7Parent3",nodes:[]
    }
    ,
    {
      id:8,parentId:5,text:"childId8Parent5",nodes:[]
    }];

Thank Mr. Bakhshabadi

Good luck

It may be useful package list-to-tree Install:

bower install list-to-tree --save

or

npm install list-to-tree --save

For example, have list:

var list = [
  {
    id: 1,
    parent: 0
  }, {
    id: 2,
    parent: 1
  }, {
    id: 3,
    parent: 1
  }, {
    id: 4,
    parent: 2
  }, {
    id: 5,
    parent: 2
  }, {
    id: 6,
    parent: 0
  }, {
    id: 7,
    parent: 0
  }, {
    id: 8,
    parent: 7
  }, {
    id: 9,
    parent: 8
  }, {
    id: 10,
    parent: 0
  }
];

Use package list-to-tree:

var ltt = new LTT(list, {
  key_id: 'id',
  key_parent: 'parent'
});
var tree = ltt.GetTree();

Result:

[{
  "id": 1,
  "parent": 0,
  "child": [
    {
      "id": 2,
      "parent": 1,
      "child": [
        {
          "id": 4,
          "parent": 2
        }, {
          "id": 5, "parent": 2
        }
      ]
    },
    {
      "id": 3,
      "parent": 1
    }
  ]
}, {
  "id": 6,
  "parent": 0
}, {
  "id": 7,
  "parent": 0,
  "child": [
    {
      "id": 8,
      "parent": 7,
      "child": [
        {
          "id": 9,
          "parent": 8
        }
      ]
    }
  ]
}, {
  "id": 10,
  "parent": 0
}];
  • 1
    Note that link-only answers are discouraged, SO answers should be the end-point of a search for a solution (vs. yet another stopover of references, which tend to get stale over time). Please consider adding a stand-alone synopsis here, keeping the link as a reference – kleopatra Sep 1 '15 at 8:06
  • I don't understand why the -1,I think that it's a good solution but unfortunately I don't find the package in gitHub or in another public repository – oriaj Oct 16 '15 at 21:01
  • Thank you for your attention to the package. I plan to later expand it. Here is a link to the repository github.com/DenQ/list-to-tree – DenQ Oct 17 '15 at 8:13
  • thanks you @DenQ your package work perfectly and is so easy to use – oriaj Oct 19 '15 at 14:50
  • @oriaj I am glad that the project benefit. The plans of a few ideas – DenQ Oct 19 '15 at 17:25

Very straightforward way to accomplish is

( BONUS1 : NODES MAY or MAY NOT BE ORDERED )

( BONUS2 : NO 3RD PARTY LIBRARY NEEDED, PLAIN JS )

const createDataTree = dataset => {
    let hashTable = Object.create(null)
    dataset.forEach( aData => hashTable[aData.ID] = { ...aData, childNodes : [] } )
    let dataTree = []
    dataset.forEach( aData => {
      if( aData.parentID ) hashTable[aData.parentID].childNodes.push(hashTable[aData.ID])
      else dataTree.push(hashTable[aData.ID])
    } )
    return dataTree
}

Here is the test for it, might help :

it('creates a correct shape of dataTree', () => {

    let dataSet = [
        {
            "ID": 1,
            "Phone": "(403) 125-2552",
            "City": "Coevorden",
            "Name": "Grady"
        },
        {
            "ID": 2,
            "parentID": 1,
            "Phone": "(979) 486-1932",
            "City": "Chełm",
            "Name": "Scarlet"
        }
    ]

    let expectedDataTree = [ 
    {
            "ID": 1,
            "Phone": "(403) 125-2552",
            "City": "Coevorden",
            "Name": "Grady",
            childNodes : [
                {
                    "ID": 2,
                    "parentID": 1,
                    "Phone": "(979) 486-1932",
                    "City": "Chełm",
                    "Name": "Scarlet",
                    childNodes : []
                }
            ]
    } 
    ]

  expect( createDataTree(dataSet) ).toEqual(expectedDataTree)
});
  • 1
    Just commenting here so I can find it later. – Rishav Sharan May 28 at 19:12

Here's a simple helper function that I created modeled after the above answers, tailored to a Babel environment:

import { isEmpty } from 'lodash'

export default function unflattenEntities(entities, parent = {id: null}, tree = []) {

  let children = entities.filter( entity => entity.parent_id == parent.id)

  if (!isEmpty( children )) {
    if ( parent.id == null ) {
      tree = children
    } else {
      parent['children'] = children
    }
    children.map( child => unflattenEntities( entities, child ) )
  }

  return tree

}
  • well done, also this works for Typescript. – Rajab Shakirov Feb 6 '17 at 18:01

also do it with lodashjs(v4.x)

function buildTree(arr){
  var a=_.keyBy(arr, 'id')
  return _
   .chain(arr)
   .groupBy('parentId')
   .forEach(function(v,k){ 
     k!='0' && (a[k].children=(a[k].children||[]).concat(v));
   })
   .result('0')
   .value();
}

var data = [{"country":"india","gender":"male","type":"lower","class":"X"},
			{"country":"china","gender":"female","type":"upper"},
			{"country":"india","gender":"female","type":"lower"},
			{"country":"india","gender":"female","type":"upper"}];
var seq = ["country","type","gender","class"];
var treeData = createHieArr(data,seq);
console.log(treeData)
function createHieArr(data,seq){
	var hieObj = createHieobj(data,seq,0),
		hieArr = convertToHieArr(hieObj,"Top Level");
		return [{"name": "Top Level", "parent": "null",
				     "children" : hieArr}]
	function convertToHieArr(eachObj,parent){
		var arr = [];
		for(var i in eachObj){
			arr.push({"name":i,"parent":parent,"children":convertToHieArr(eachObj[i],i)})
		}
		return arr;
	}
	function createHieobj(data,seq,ind){
		var s = seq[ind];
		if(s == undefined){
			return [];
		}
		var childObj = {};
		for(var ele of data){
			if(ele[s] != undefined){
				if(childObj[ele[s]] == undefined){
					childObj[ele[s]] = [];
				}
				childObj[ele[s]].push(ele);
			}
		}
		ind = ind+1;
		for(var ch in childObj){
			childObj[ch] = createHieobj(childObj[ch],seq,ind)
		}
		return childObj;
	}
}

  • I created this function to convert data from array of objects to tree structure,which is required for d3 tree interactive chart. With Only 40 lines of code I was able to get the output. I wrote this function in an efficent way usign recursive funtionality in js. Try and let me know your feedback. Thank you!!!! – karthik reddy Oct 31 '17 at 19:18
  • Thanks for the anwser..It works perfectly for my d3 tree topology.. Now i have requirement that i need to change the node color based on the values of the node..So for that i need to pass a flag value in the JSON. How do i do that.. { "name": "Top Level", "flag" : 1, "parent": "null", "children": [ { "name": "india", "flag" : 0, "parent": "Top Level", "children": [ – Puneeth Kumar Jul 30 at 7:04

Here is a modified version of Steven Harris' that is plain ES5 and returns an object keyed on the id rather than returning an array of nodes at both the top level and for the children.

unflattenToObject = function(array, parent) {
  var tree = {};
  parent = typeof parent !== 'undefined' ? parent : {id: 0};

  var childrenArray = array.filter(function(child) {
    return child.parentid == parent.id;
  });

  if (childrenArray.length > 0) {
    var childrenObject = {};
    // Transform children into a hash/object keyed on token
    childrenArray.forEach(function(child) {
      childrenObject[child.id] = child;
    });
    if (parent.id == 0) {
      tree = childrenObject;
    } else {
      parent['children'] = childrenObject;
    }
    childrenArray.forEach(function(child) {
      unflattenToObject(array, child);
    })
  }

  return tree;
};

var arr = [
    {'id':1 ,'parentid': 0},
    {'id':2 ,'parentid': 1},
    {'id':3 ,'parentid': 1},
    {'id':4 ,'parentid': 2},
    {'id':5 ,'parentid': 0},
    {'id':6 ,'parentid': 0},
    {'id':7 ,'parentid': 4}
];
tree = unflattenToObject(arr);

This is a modified version of the above that works with multiple root items, I use GUIDs for my ids and parentIds so in the UI that creates them I hard code root items to something like 0000000-00000-00000-TREE-ROOT-ITEM

var tree = unflatten(records, "TREE-ROOT-ITEM");

function unflatten(records, rootCategoryId, parent, tree){
    if(!_.isArray(tree)){
        tree = [];
        _.each(records, function(rec){
            if(rec.parentId.indexOf(rootCategoryId)>=0){        // change this line to compare a root id
            //if(rec.parentId == 0 || rec.parentId == null){    // example for 0 or null
                var tmp = angular.copy(rec);
                tmp.children = _.filter(records, function(r){
                    return r.parentId == tmp.id;
                });
                tree.push(tmp);
                //console.log(tree);
                _.each(tmp.children, function(child){
                    return unflatten(records, rootCategoryId, child, tree);
                });
            }
        });
    }
    else{
        if(parent){
            parent.children = _.filter(records, function(r){
                return r.parentId == parent.id;
            });
            _.each(parent.children, function(child){
                return unflatten(records, rootCategoryId, child, tree);
            });
        }
    }
    return tree;
}

I like @WilliamLeung's pure JavaScript solution, but sometimes you need to make changes in existing array to keep a reference to object.

function listToTree(data, options) {
  options = options || {};
  var ID_KEY = options.idKey || 'id';
  var PARENT_KEY = options.parentKey || 'parent';
  var CHILDREN_KEY = options.childrenKey || 'children';

  var item, id, parentId;
  var map = {};
    for(var i = 0; i < data.length; i++ ) { // make cache
    if(data[i][ID_KEY]){
      map[data[i][ID_KEY]] = data[i];
      data[i][CHILDREN_KEY] = [];
    }
  }
  for (var i = 0; i < data.length; i++) {
    if(data[i][PARENT_KEY]) { // is a child
      if(map[data[i][PARENT_KEY]]) // for dirty data
      {
        map[data[i][PARENT_KEY]][CHILDREN_KEY].push(data[i]); // add child to parent
        data.splice( i, 1 ); // remove from root
        i--; // iterator correction
      } else {
        data[i][PARENT_KEY] = 0; // clean dirty data
      }
    }
  };
  return data;
}

Exapmle: https://jsfiddle.net/kqw1qsf0/17/

Copied from the Internet http://jsfiddle.net/stywell/k9x2a3g6/

    function list2tree(data, opt) {
        opt = opt || {};
        var KEY_ID = opt.key_id || 'ID';
        var KEY_PARENT = opt.key_parent || 'FatherID';
        var KEY_CHILD = opt.key_child || 'children';
        var EMPTY_CHILDREN = opt.empty_children;
        var ROOT_ID = opt.root_id || 0;
        var MAP = opt.map || {};
        function getNode(id) {
            var node = []
            for (var i = 0; i < data.length; i++) {
                if (data[i][KEY_PARENT] == id) {
                    for (var k in MAP) {
                        data[i][k] = data[i][MAP[k]];
                    }
                    if (getNode(data[i][KEY_ID]) !== undefined) {
                        data[i][KEY_CHILD] = getNode(data[i][KEY_ID]);
                    } else {
                        if (EMPTY_CHILDREN === null) {
                            data[i][KEY_CHILD] = null;
                        } else if (JSON.stringify(EMPTY_CHILDREN) === '[]') {
                            data[i][KEY_CHILD] = [];
                        }
                    }
                    node.push(data[i]);
                }
            }
            if (node.length == 0) {
                return;
            } else {
                return node;
            }
        }
        return getNode(ROOT_ID)
    }

    var opt = {
        "key_id": "ID",              //节点的ID
        "key_parent": "FatherID",    //节点的父级ID
        "key_child": "children",     //子节点的名称
        "empty_children": [],        //子节点为空时,填充的值  //这个参数为空时,没有子元素的元素不带key_child属性;还可以为null或者[],同理
        "root_id": 0,                //根节点的父级ID
        "map": {                     //在节点内映射一些值  //对象的键是节点的新属性; 对象的值是节点的老属性,会赋值给新属性
            "value": "ID",
            "label": "TypeName",
        }
    };

You can use npm package array-to-tree https://github.com/alferov/array-to-tree. It's convert a plain array of nodes (with pointers to parent nodes) to a nested data structure.

Solves a problem with conversion of retrieved from a database sets of data to a nested data structure (i.e. navigation tree).

Usage:

var arrayToTree = require('array-to-tree');

var dataOne = [
  {
    id: 1,
    name: 'Portfolio',
    parent_id: undefined
  },
  {
    id: 2,
    name: 'Web Development',
    parent_id: 1
  },
  {
    id: 3,
    name: 'Recent Works',
    parent_id: 2
  },
  {
    id: 4,
    name: 'About Me',
    parent_id: undefined
  }
];

arrayToTree(dataOne);

/*
 * Output:
 *
 * Portfolio
 *   Web Development
 *     Recent Works
 * About Me
 */
  1. without third party library
  2. no need for pre-ordering array
  3. you can get any portion of the tree you want

Try this

function getUnflatten(arr,parentid){
  let output = []
  for(const obj of arr){
    if(obj.parentid == parentid)

      let children = getUnflatten(arr,obj.id)

      if(children.length){
        obj.children = children
      }
      output.push(obj)
    }
  }

  return output
 }

Test it on Jsfiddle

This is a proposal for unordered items. This function works with a single loop and with a hash table and collects all items with their id. If a root node is found, then the object is added to the result array.

function getTree(data, root) {
    var o = {};
    data.forEach(function (a) {
        if (o[a.id] && o[a.id].children) {
            a.children = o[a.id].children;
        }
        o[a.id] = a;
        o[a.parentId] = o[a.parentId] || {};
        o[a.parentId].children = o[a.parentId].children || [];
        o[a.parentId].children.push(a);
    });
    return o[root].children;
}

var data = { People: [{ id: "12", parentId: "0", text: "Man", level: "1", children: null }, { id: "6", parentId: "12", text: "Boy", level: "2", children: null }, { id: "7", parentId: "12", text: "Other", level: "2", children: null }, { id: "9", parentId: "0", text: "Woman", level: "1", children: null }, { id: "11", parentId: "9", text: "Girl", level: "2", children: null }], Animals: [{ id: "5", parentId: "0", text: "Dog", level: "1", children: null }, { id: "8", parentId: "5", text: "Puppy", level: "2", children: null }, { id: "10", parentId: "13", text: "Cat", level: "1", children: null }, { id: "14", parentId: "13", text: "Kitten", level: "2", children: null }] },
    tree = Object.keys(data).reduce(function (r, k) {
        r[k] = getTree(data[k], '0');
        return r;
    }, {});

console.log(tree);
.as-console-wrapper { max-height: 100% !important; top: 0; }

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