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I have two arrays of objects:

var a = [  {'id': 20},   {'id': 15},   {'id': 10},   {'id': 17},   {'id': 23}  ];

var b = [ {'id': 90},   {'id': 15},    {'id': 17},   {'id': 23}  ];  

I'd like to get objects which are in a, but not in b. Results from this example would be:

{'id': 20} and {'id': 10}.

Because the arrays could be large, I need an efficient way to do this.

share|improve this question
    
When you say you want the objects in A but not in B, do you mean the object (references) themselves, or does value comparison work for you? Strictly speaking if your example were real JavaScript and not pseudo code, all of the objects in A are not in B! – Ray Toal Jul 16 '11 at 5:56
    
@Ray Toal If they have same "id" they are same object – wong2 Jul 16 '11 at 6:00
1  
Ah, okay then a linear time solution exists. Put value of a in a set x (in JS, the keys of an object). Ditto for b. For each key in y, remove it from x. Then x will have all the integers that appear as values in a that are not in b. You may need another step to extract corresponding objects from a... Have fun implementing. :) – Ray Toal Jul 16 '11 at 6:07
up vote 15 down vote accepted
// Make hashtable of ids in B
var bIds = {}
b.forEach(function(obj){
    bIds[obj.id] = obj;
});

// Return all elements in A, unless in B
return a.filter(function(obj){
    return !(obj.id in bIds);
});

very minor addendum: If the lists are very large and you wish to avoid the factor of 2 extra memory, you could store the objects in a hashmap in the first place instead of using lists, assuming the ids are unique: a = {20:{etc:...}, 15:{etc:...}, 10:{etc:...}, 17:{etc:...}, 23:{etc:...}}. I'd personally do this. Alternatively: Secondly, javascript sorts lists in-place so it doesn't use more memory. e.g. a.sort((x,y)=>x.id-y.id) Sorting would be worse than the above because it's O(N log(N)). But if you had to sort it anyway, there is an O(N) algorithm that involves two sorted lists: namely, you consider both lists together, and repeatedly take the leftmost (smallest) element from the lists (that is examine, then increment a pointer/bookmark from the list you took). This is just like merge sort but with a little bit more care to find identical items... and maybe pesky to code. Thirdly, if the lists are legacy code and you want to convert it to a hashmap without memory overhead, you can also do so element-by-element by repeatedly popping the elements off of the lists and into hashmaps.

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1  
Love functional programming. – Ray Toal Jul 16 '11 at 7:30
    
@Ray: Unfortunately it's not truly entirely functional programming; I cheat and make mutations in the forEach. =( In order to sanely do real functional programming, we'd need a functional datastructure that allowed one to sum two key-sets/objects without making a copy of the whole thing, and to use Array.reduce(function(obj,accum){...}, {}) or some variant. We could also abstract away the "evil" mutation into Array.prototype.toObject = function(callback){var R={};this.forEach(function(elem){var r=callback(elem);R[r[0]]=r[1];});return R;} and pretend it's a functional primitive. – ninjagecko Jul 16 '11 at 7:53
    
addendum demo: [1,2,3].toObject(function(x){return [x,10*x]}) --> {1:10, 2:20, 3:30} – ninjagecko Jul 16 '11 at 7:56
    
True, you are using state, my bad. Here's my stateless solution: let bIds = map(b, (k,v) => v) in filter(a, (x) => x not in bids) – Ray Toal Jul 16 '11 at 8:03
    
You can improve a bit by replacing the first step with: bIds = b.map(function(user) { return b.id }); Then in the second step, you can just compare the value of Ids. – Ethan Yang May 13 at 7:35

A general way to do this would be:

  1. put all objects from b into a hashtable
  2. iterate over a, for each item check if it is in the hashtable

A lot of programming environments have set and/or HashSet implementations these days, which make it very simple to do this.

In special cases, other ways might be more efficient. If, for example, your elements were byte-sized values, and a and b both fairly big, then I would use a boolean array "flags" with 256 elements, initialize all to false. Then, for each element x of b, set flags[x] to true. Then iterate over a, and for each y in a, check if flags[y] is set.

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If you not adverse to including a library use underscore.js it has a good intersection function http://documentcloud.github.com/underscore/

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With lodash 4.12.0 you can use _.differenceBy.

_.differencyBy(a, b, 'id');
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