57

As the title asks, I wonder if the size() method in the LinkedList class takes amortized O(1) time or O(n) time.

Improve this question
1
  • Note, for concurrent structures computing size may be slow, and is pointless anyway.
    – Tom Hawtin - tackline
    May 14, 2009 at 14:18

2 Answers 2

Reset to default
85

It's O(1). You can google for the source code and you will come to such:

From http://www.docjar.com/html/api/java/util/LinkedList.java.html

All of the Collection classes I have looked at store a the size as a variable and don't iterate through everything to get it.

Improve this answer
1
  • 3
    ctrl-click in NetBeans will find it even faster than google ;)
    – Superole
    Dec 7, 2011 at 16:04
18

O(1) as you would have found had you looked at the source code...

From LinkedList:

private transient int size = 0;

...

/**
 * Returns the number of elements in this list.
 *
 * @return the number of elements in this list
 */
public int size() {
   return size;
}
Improve this answer
3
  • 7
    And if you're not using Sun's implementation at all? en.wikipedia.org/wiki/… I think his question is whether it is guaranteed to be O(1), rather than whether it is O(1) in any specific implementation/version.
    – jalf
    May 14, 2009 at 14:04
  • 2
    The implementation has been the same since 1.2 when LinkedList was introduced, so it'll always be O(1)
    – Valentin Rocher
    May 14, 2009 at 14:05
  • 6
    This is from Java 1.6. This is not dependent on the VM but (in theory) could be different in older versions of the standard library. Check your version's source if you want to be 100% sure, but no sane developer would calculate the size on demand for something like this where everything is in memory and you can tally it up as the structure is created.
    – Kris
    May 14, 2009 at 14:05

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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