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E.g.

I have a queue

void someMethod() {

     history.add(new Sample(time, data));
     ...
     traverse(history);
}

void traverse(Queue<Sample> history) {
     for(int i=0; i<history.size(); i=i+10) {
         history.get(i)...  // ???
     }
}

class Sample {
  long time;
  double data;
}

The concerns are that

  1. I don't want to destroy this queue by calling traverse().
  2. Traverse the queue in a given step, say 10 here.

Any simple and nice solution?

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4 Answers 4

up vote 5 down vote accepted
for (Sample s : history)
    doStuff(s);

This is called the enhanced for-loop; you can read more about it here.

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Queue implements Iterable, so a simple loop will traverse it:

for (Sample sample : history)

An Iterator is another way to do it, with more control (can destroy it if you want to), but more verbose.

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Nice! I forgot a condition (see the updated question). Sorry. –  JackWM May 7 '13 at 23:49

If you just want to iterate, use a for-each loop or directly a for loop with an Iterator. This doesn't consume the queue.

If you need to iterate with a step, you can use this pattern. It works generally with any Iterable. Putting the skipping into a separate reusable method makes the code more clear than having two nested for loops.

public static void main(String[] args) {
    Queue<Sample> history = ...
    int step = 10;
    for (Iterator<Sample> it = history.iterator();
            it.hasNext(); skip(it, step - 1)) {
        // note that we skipped 1 less elements than the size of the step
        Sample sample = it.next();
        // stuff
    }
}

static void skip(Iterator<?> iterator, int count) {
    for (int i = 0; i < count && iterator.hasNext(); i++) {
        iterator.next();
    }
}
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Why the downvote?? I'm the only one so far who also addressed the skipping of elements. –  Natix May 7 '13 at 23:58
    
It seems your code only loop through the first n elements, while OP wants the loop with step size equals n, these are different. –  Ziyao Wei May 8 '13 at 0:21
    
@ZiyaoWei I disagree. I've tested the code and it works. Only actual problem was that the value of step passed to skip() method has to be smaller by 1 because the obtaining of the next sample also consumes 1 element. –  Natix May 8 '13 at 0:31
    
My bad, read you code wrongly. -1 -> +1. –  Ziyao Wei May 8 '13 at 0:35
LinkedList<Sample> h = (LinkedList<Sample>) history;
for(int i=0; i < h.size(); i+=step) {
    h.get(i).memory ...
}

I just realized this approach, haven't tried it yet.

As nullptr pointed out, the condition for above code is that the Queue is implemented as a LinkedList. (which is my case: Queue<Sample> history = new LinkedList<Sample>();)

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1  
This will fail if the Queue isn't also a LinkedList –  nullptr May 8 '13 at 0:15
    
@nullptr Nice comment. I agree with you. –  JackWM May 8 '13 at 0:19
    
Also, get(index) method on LinkedList has linear time complexity. You're basically iterating the list from its head again and again in every iteration. –  Natix May 8 '13 at 0:29
    
It's fine to implement it that way (besides the time concerns), but you should make the method take a LinkedList instead of casting it to one –  nullptr May 8 '13 at 0:34
    
@nullptr Nice idea! But that still needs casting which happens during each calling of the traverse() method, right? –  JackWM May 8 '13 at 12:30

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