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The MDN documentation for Set says that JavaScript Set objects retain insertion order of elements:

Set objects are collections of values, you can iterate its elements in insertion order.

Is there a way to get the last item inserted into a Set object?

var s = new Set();
s.add("Alpha");
s.add("Zeta");
s.add("Beta");

console.log(getLastItem(s)); // prints "Beta"
share|improve this question
    
In insertion order? Does javascript have O(n) set operations? – Filip Haglund Jan 4 at 14:49
    
@FilipHaglund Insert, lookup and remove are O(1). The standard requires one more thing: iterate the items in insertion order. But you don't have to iterate over to do a lookup. – Tamas Hegedus Jan 4 at 14:57
    
I'm very sure it's not O(1). Is it keeping a separate list of the keys for iteration, and a tree for lookup, making iteration O(n log n)? – Filip Haglund Jan 4 at 15:01
    
@FilipHaglund Those operations can be implemented by a combination of a hashtable and a linked list. Imagine a 'next item' reference (an index in the hashtables underlying array) besides every entry, and update that on every operation. Insertion and deletion is O(1) on linked lists. For lookup, the hashtable is used. – Tamas Hegedus Jan 4 at 15:04
1  
The spec only requires access times to be sublinear on average. The specific structure and cost are implementation-dependent. – Oriol Jan 4 at 15:07
up vote 16 down vote accepted

I was not able to find any method to get last value inserted in set from ECMA 2015 Specification, may be they never intended such a method, but you can do something like:

var a = new Set([1, 2, 3]);
a.add(10);
var lastValue = Array.from(a).pop();

Edit:

on second thought, a space efficient solution might be:

function getLastValue(set){
  var value;
  for(value of set);
  return value;
}

var a = new Set([1, 2, 3]);
a.add(10);
console.log('last value: ', getLastValue(a));
share|improve this answer
    
Is there no builtin constant time solution? – Tamas Hegedus Jan 4 at 2:22
    
@hege_hegedus unfortunately no, at least I cannot find any in the specifications :( – mido Jan 4 at 2:25
1  
I start to suspect the overhead of converting set back to an array. For the case of large collection it may or may not exhibit some overhead. However, it makes sense the .last is not included in the spec because in theory, set doesn't need the order. – Tao P. R. Jan 4 at 2:51

Yes, there is a way to do that, you can simply convert the set to an array and pop of the last item

function getLastItem(_set) {
    return [..._set].pop();
}

to get keys/values etc, you can do

return [..._set.entries()].pop(); // the entire entry
return [..._set.keys()].pop();    // the key only
return [..._set.values()].pop();  // the value only

If you don't want to create an array, you'd probably have to iterate and get the last value, like this

var last; s.forEach(k => { last = k }); // last === "Beta"

FIDDLE

share|improve this answer
    
I really like the use of the spread syntax here – Tamas Hegedus Jan 4 at 2:12
    
@hege_hegedus - I didn't notice mido's answer and posted the same one at first, so I figured I'd have to come up with something at least a little different, the spread operator and how to get the entire entries, keys etc, seemed like enough to not just post the exact same thing. – adeneo Jan 4 at 2:13
    
I'm just curious: is there a short syntax to exhaust the iterator and get the last element without building a list? (I mean shorter than writing a separate function for that task too) – Tamas Hegedus Jan 4 at 2:17
    
I don't think there is, but I still don't know all the ins and outs of ES2015. Sets are somewhat limited to a few prototyped methods, it would have to be something else that's clever from ES2015, something with iterators etc. – adeneo Jan 4 at 2:21

Some ideas:

  • Consider using an array instead of a set. Extracting the last element of an array is easy, e.g.

    array[array.length-1];
    array.slice(-1)[0];
    array.pop(); // <-- This alters the array
    

    If you really need a set, you can convert it to an array when you want to extract the last item, but that will cost time and space.

  • Iterate the set manually. This will cost time but not as much space as copying into an array. For example (there are probably more elegant ways to do this)

    var set = new Set([1, 2, 3]);
    var iter = set.values(), prev, curr;
    do {
      prev = curr;
      curr = iter.next();
    } while(!curr.done)
    var last = prev.value; // 3
    
  • Consider inserting the items in reverse order. Then you only need to get the first item in the set, and that's easier:

    set.values().next().value;
    
  • Subclass Set to add this new functionality:

    class MySet extends Set {
      add(value) {
        super.add(value);
        this.last = value;
      }
    }
    var set = new MySet();
    set.add(1); set.add(2); set.add(3);
    set.last; // 3
    

    Note this will only detect values added with add. To be more complete, it should also detect the latest value when the set is constructed, and update the value when the last item is removed.

share|improve this answer

Just another approach.

Set.prototype.last = function(){
  return new Set().add( [...this].pop() );
}

Set.prototype.lastKey = function(){
  return [...this.keys()].pop();
}

Set.prototype.lastValue = function(){
  return [...this.values()].pop();
}

var lastSet = s.last(); // "Beta"
var lastKey = s.lastKey(); // "Beta"
var lastValue = s.lastValue(); //  "Beta"
share|improve this answer
indexOfLastItem=s.length()-1;

return(s[indexOfLastItem]);
share|improve this answer
5  
I'm afraid this is not a JavaScript code. But now I am curious: in which language is the length of a set (or an array) a getter function? – Tamas Hegedus Jan 4 at 2:11
    
2  
@Themer that code uses .length, without the (). It's a property, not a function. – Hans Kesting Jan 4 at 14:30
1  
FYI: Sets always have a length of 0, they do however have a size – adeneo Jan 4 at 15:04
    
@adeneo Thats not exactly true. (new Set()).length === undefined. What you really meant is Set.length === 0, and that's because length property of functions gives the required argument count, which is 0 for Sets – Tamas Hegedus Jan 5 at 10:55

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