Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

How exactly does Javascript's array.reverse() work? Does it go through and swap every element of the array? If so, does it take O(n) to swap an array of size n?

I guess the reason I am asking is because I was wondering if array.reverse() was the same as:

for(var i = 0; i < a.length / 2; i++) {
  var holder = a[i];
  a[i] = a[a.length - 1 - i];
  a[a.length - 1 - i] = holder;
}

NOTE: Sorry if the Javascript code I posted is incorrect, it's pretty late right now.

EDIT: Fixed a.length to a.length / 2.

share|improve this question
2  
It's incorrect because by traversing the array in full, you'll swap all the elements twice and return to the original array. Use a.length / 2 (integer division of a.length and 2) – xanatos Oct 27 '11 at 7:19
up vote 6 down vote accepted

For the full details of how it works, read the relevant section of the spec. Here's the algorithm:

  1. Let O be the result of calling ToObject passing the this value as the argument.

    1. Let lenVal be the result of calling the [[Get]] internal method of O with argument "length".
    2. Let len be ToUint32(lenVal).
    3. Let middle be floor(len/2).
    4. Letlower be 0.
    5. Repeat, while lower ≠ middle

      1. Let upper be len−lower −1.
      2. Let upperP be ToString(upper).
      3. Let lowerP be ToString(lower).
      4. Let lowerValue be the result of calling the [[Get]] internal method of O with argument lowerP.
      5. Let upperValue be the result of calling the [[Get]] internal method of O with argument upperP .
      6. Let lowerExists be the result of calling the [[HasProperty]] internal method of O with argument lowerP.
      7. Let upperExists be the result of calling the [[HasProperty]] internal method of O with argument upperP.
      8. If lowerExists is true and upperExists is true, then

      9. Call the [[Put]] internal method of O with arguments lowerP, upperValue, and true .

      10. Call the [[Put]] internal method of O with arguments upperP, lowerValue, and true .
      11. Else if lowerExists is false and upperExists is true, then
      12. Call the [[Put]] internal method of O with arguments lowerP, upperValue, and true .
      13. Call the [[Delete]] internal method of O, with arguments upperP and true.
      14. Else if lowerExists is true and upperExists is false, then
      15. Call the [[Delete]] internal method of O, with arguments lowerP and true .
      16. Call the [[Put]] internal method of O with arguments upperP, lowerValue, and true .
      17. Else, both lowerExists and upperExists are false
      18. No action is required.
      19. Increase lower by 1.
    6. Return O .
share|improve this answer

The actual algorithm is almost similar to what you specified. Just change your for loop to iterate only upto a.length/2 and it would be similar to what Array.reverse would do. I am skipping the inner details here for the sake of simplicity. So it would be

for(var i = 0; i < a.length/2; i++) {
  var holder = a[i];
  a[i] = a[a.length - 1 - i];
  a[a.length - 1 - i] = holder;
}
share|improve this answer
var a = new Array();
var reverse = function() {
    var reversedArray = new Array();

    var i = 0;
    var j = this.length - 1;
    while(i < this.length)
        reversedArray[j--] = this[i++];
    reversedArray.__proto__.reverse = this.reverse;
    return reversedArray;
}
a.__proto__.reverse = reverse;
share|improve this answer
    
It looks like your code would reverse the array twice. Once when i < j and again when j < i. You need to set i<j as your stop condition. – Tom Leys Jul 3 '14 at 8:19
    
It doesn't do that. Please test it in your javascript console if you have doubts. – Daniel Teichman May 11 at 23:14

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.