Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I would like to implement a size limit for JavaScript objects and their properties count. What I need is to delete oldest updated one when a new property is added to an object.

Consider the following object, where I count the number of occurrences of each letter (but only for the 2 latest letters seen) in a text:

var occurrences = {a: 1, d: 2}

When I read a I'll increment occurrences['a'] by one. But after that, if I see h I have to delete d, because it was less recently updated than a. Then, my object would be the following:

{a: 2, h: 1}

There are good reasons to use an object for this purposes, so I cannot use a sorted array, for instance, because performance is very very important.

share|improve this question
    
I think keeping track of all props is gonna hurt your performances more –  Ven May 24 '13 at 14:18

2 Answers 2

up vote 1 down vote accepted

If you are in node.js, you can take advantage of a surprising feature of object properties: they are returned in the order in which they were added. So you can just define an object with a few properties:

var array = { fake1: 'fake', fake2: 'fake' };

And then every time you add a new property, you remove the first one:

for (var i in array) {
  delete array[i];
  break;
}

When you update a property, you have to remove it and then re-add it so it goes at the end again.

It is simple yet very effective: you will always have the newest two properties in your object. You don't need to keep extra data or go over the set of properties each time you operate on an element.

I have not tested this with in-browser JavaScript engines; you should not rely on order of properties because the language makes no guarantees, but apparently it works too.

share|improve this answer
    
But properties order is not modified if you updates one, so it is not useful for my purpose. –  sgmonda May 25 '13 at 10:33
    
You are right, you have to delete then re-add the property. I am updating my answer. –  alexfernandez May 25 '13 at 12:09

The only reliable way to determine "oldest" is to keep some kind of index, probably using an array. Whenever you update the object, you check if the property exists or not using propertyName in Object. If it does, splice it from the array and use unshift to put it at index 0, then update its value on the object.

If it doesn't exist already, and the array length is equal to max property count, pop the oldest property name off the array, unshift the new property to index 0, delete the old property from the object and add the new property.

If it doesn't exist and the array length is less than the max property count, unshift the name on the array to add it at index 0 and add it to the object.

Edit

Some code. Note that you need to protect against overwriting the *_maxPropCount* and *_index* properties, I'll leave that to you.

var o = {a:1, b:2, _maxPropCount: 2, _index: ['a','b']};

function updateObject(obj, prop, value) {
  var idx = obj._index;
  var i, lastProp;

  // If property exists, move to start of index array
  if (prop in obj) {
    i = idx.indexOf(prop);
    idx.unshift(idx.splice(i, 1));

  // Otherwise, property doesn't exist so check length and
  // number of properties
  } else {

    // If already have full count, pop last property name from end of array
    // and delete from object
    if (idx.length == o._maxPropCount) {
      lastProp = idx.pop();
      delete o[lastProp];
    }

    // Update index
    idx.unshift(prop);
  }

  // Update object
  obj[prop] = value;
}

updateObject(o, 'b', 6);
alert(o._index + ' ' + o.b); // b,a 6

updateObject(o, 'g', 2);
alert(o._index + ' ' + o.a); // g,b undefined

The code could be shorter by a few lines, but that won't make it any faster. Oh, and indexOf is ES5 so not available on older browsers, a shim is required which will be slow for UAs that need to use it if you have many properties.

share|improve this answer
    
Yeah, that’s what I’d try first, too (and see how it does performance-wise). And I think your explanation is detailed enough (+1), translating that into code should be easy with some basic JS knowledge. –  CBroe May 24 '13 at 14:40

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.