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I was reading this article - http://css-tricks.com/interviewing-front-end-engineer-san-francisco - about interviewing a Front-end Engineer. The guy who wrote the article suggested the following:

Instead of asking about the complexity of a merge sort, ask about the complexity of this jQuery expression:

$("#nav a")
  .addClass("link")
  .attr("data-initialized", true)
  .on("click", doSomething)

He goes on to say: A correct answer to this will demonstrate both an understanding of basic computer science principles as well as a deeper knowledge of what jQuery is doing behind the scenes.

So, what is the correct answer?

(I would actually find it easier to talk about the complexity (Big O) of a merge sort, even though it's been a while since I've done any real analysis of algorithms. Not since college!)

share|improve this question
    
But the complexity of a merge sort is almost never relevant to a front-end engineer. Plus the purpose of an interview isn't to be easy. – Dave Newton Feb 25 '14 at 18:06
up vote 5 down vote accepted

Here it is, line by line:

("#nav a") - finding matched elements is O(N) task in general. Consider that #nav is assigned to the body element and all you have in your document are <a>s. You need to scan all of them against "a" selector.

.addClass("link") - that's O(n) task for just to walk through the list. But it has hidden cost - by changing class of element you are asking browser to recalculate style of the element and all its descendants. So in worst case all DOM elements will be affected. Considering that cost of style recalculation is O(N*S) task (N - number of DOM elements, S - number of style rules in all style sheets) then total price will be O(N*S)

.attr("data-initialized", true) - that in principle has the same price as above.

.on("click", doSomething) - that is O(n) task (n - number elements in the set) + it has a cost of allocating memory for event binding structures. Each element in the set will have new binding and so additional memory allocated.

So overall answer is O(N*S) for computational complexity and M(N) for memory consumption.

UAs usually do some optimizations but worst case mandated by CSS selector structure is like that.

Update: for the brevity "small" things like creation of DOM attribute nodes for "data-initialized" for example are left out.

share|improve this answer
    
Im not 100% sure about JS but CSS selectors are read from right to left. Wouldnt you say that $("a") would cost O(N) and thus $("#nav a") would be > O(N)? Left to right or right to left, after finding all one type of node O(N) it will still require another iteration depending on how many nodes found in the first step. – EricG Mar 15 '14 at 22:16
    
@EricG I am not sure I understand the question. $("a") is O(N) task as you need to scan all elements in DOM and check do they have tagName == "a". And $("#nav a") is O(N*D) task where D is average depth of the tree. Consider document like this <html id="nav"><a/><a/>...<a/></html>. To build result set of $("#nav a") you will need to scan all <a>'s and test if each of them has #nav in parent chain (number of tests - D, for each element). – c-smile Mar 15 '14 at 22:55
    
Agreed, so in your answer you wrote O(N) for $("#nav a") did you not? :-) – EricG Mar 17 '14 at 7:46
    
@EricG O(N) if you count full selector testings, O(N*D) if you want to count number of simple selectors (or number of tested/accessed elements). Impact of D multiplier is usually not that large on average DOM structures so it is assumed to be constant. But in degenerate cases it may have significant impact. – c-smile Mar 17 '14 at 17:39
    
All I'm saying is that I dont think full selector testings are realistic and thus I dont find O(N) accurate, cuz complexity of a selector/HTML structure may have significant impact. CHeers – EricG Mar 18 '14 at 10:23

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