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I have a HUGE collection and I am looking for a property by key someplace inside the collection. What is a reliable way to get a list of references or full paths to all objects containing that key/index? I use jQuery and lodash if it helps and you can forget about infinite pointer recursion, this is a pure JSON response.

fn({ 'a': 1, 'b': 2, 'c': {'d':{'e':7}}}, "d"); 
// [o.c]

fn({ 'a': 1, 'b': 2, 'c': {'d':{'e':7}}}, "e");
// [o.c.d]

fn({ 'aa': 1, 'bb': 2, 'cc': {'d':{'x':9}}, dd:{'d':{'y':9}}}, 'd');
// [o.cc,o.cc.dd]

fwiw lodash has a _.find function that will find nested objects that are two nests deep, but it seems to fail after that. (e.g. http://codepen.io/anon/pen/bnqyh)

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3 Answers 3

up vote 8 down vote accepted

This should do it:

function fn(obj, key) {
    if (_.has(obj, key)) // or just (key in obj)
        return [obj];
    // elegant:
    return _.flatten(_.map(obj, function(v) {
        return typeof v == "object" ? fn(v, key) : [];
    }), true);

    // or efficient:
    var res = [];
    _.forEach(obj, function(v) {
        if (typeof v == "object" && (v = fn(v, key)).length)
            res.push.apply(res, v);
    });
    return res;
}
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awesome impl btw –  Shanimal Mar 27 '13 at 21:51
2  
this almost worked for me. I had to change line #3 to be return [obj[key]]; instead so that I would get an array of the key's values back instead of the wrapping object –  Chris Montgomery Jul 31 at 15:40
2  
@ChrisMontgomery: Yeah, but OP wanted "all objects containing that key" (probably he's doing a pluck() on the result anyway) –  Bergi Jul 31 at 16:42
1  
@Bergi makes sense. Your solution works for all my scenarios while the answer from Al Jey had problems with objects inside arrays inside objects. –  Chris Montgomery Jul 31 at 17:11

a pure JavaScript solution would look like the following:

function findNested(obj, key, memo) {
  var i, proto = Object.prototype, ts = proto.toString;
  ('[object Array]' !== ts.call(memo)) && (memo = []);
  for (i in obj) {
    if (proto.hasOwnProperty.call(obj, i)) {
      if (i === key) {
        memo.push(obj[i]);
      } else if ('[object Array]' === ts.call(obj[i]) || '[object Object]' === ts.call(obj[i])) {
        findNested(obj[i], key, memo);
      }
    }
  }
  return memo;
}

whereas with lodash it can be simplified, like so:

function findNested(obj, key, memo) {
  _.isArray(memo) || (memo = []);
  _.forOwn(obj, function(val, i) {
    if (i === key) {
      memo.push(val);
    } else {
      findNested(val, key, memo);
    }
  });
  return memo;
}

here's how you'd use this function:

findNested({'aa': 1, 'bb': 2, 'cc': {'d':{'x':9}}, dd:{'d':{'y':9}}}, 'd');

and the result would be:

[{x: 9}, {y: 9}]
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This solution does not work with nested arrays, e.g. findNested({ 'a': [ {'b': {'c': 7}} ]}, 'b') while @Bergi's does –  Chris Montgomery Jul 31 at 17:50
    
@ChrisMontgomery, that's because the original question only included objects and didn't have any arrays, I've updated the sample. –  Al Jey Aug 7 at 19:17

Something like this would work, converting it to an object and recursing down.

function find(jsonStr,searchkey){
    var jsObj = JSON.parse(jsonStr);
    var set = [];
    function fn(obj,key,path){
      for(var prop in obj){
          if(prop ===key){
              set.push(path+"."+prop);
           }
          if(obj[prop]){
               fn(obj[prop],key,path+"."+prop);
           }
       }
       return set;
    }
    fn(jsObj,searchkey,"o");
}

Fiddle: jsfiddle

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