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I am new to java programming, been programing in php so I'm used to this type of loop:

int size = mapOverlays.size();
for(int n=1;n<size;n++)
{
    mapOverlays.remove(n);
}

So I want to remove everything but the first item, so why doesn't this work? As I get it, after removal, array keys are rearranged or not?

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As far as i can understand, you're picking the size of a list named itemizedOverlay, and you work on another list named mapOverlays. I hope that's normal ;-) –  Agemen Jun 23 '10 at 7:04
    
Sorry, a typo, the arrays are same, I edited –  dfilkovi Jun 23 '10 at 7:05
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11 Answers

up vote 10 down vote accepted

As I get it, after removal, array keys are rearranged or not? Yes, the item which was on position 2 is on position 1 after you removed the item on position 1.

You can try this:

Object obj = mapOverlays.get(0); // remember first item
mapOverlays.clear(); // clear complete list
mapOverlays.add(obj); // add first item
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4  
This may work but it causes the list to enter an unnecessary intermediate state. If the list is used concurrently (perhaps it's a CopyOnWriteArrayList), you should avoid this solution. –  Jesse Wilson Jun 23 '10 at 18:33
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You could use

mapOverlays.subList(1, mapOverlays.size()).clear();
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4  
+1 It is just unbelievable to me that this is not the highest-rated answer. It's both the simplest to code and likely to be the most efficient (as each List implementation will perform the task in the most optimal way given its structure). –  Kevin Bourrillion Jun 23 '10 at 17:35
    
holy crap, it went from 2 votes to the highest-rated in only an hour! –  Kevin Bourrillion Jun 23 '10 at 18:55
    
This is a useful way of writing it. If you actually look at the code, though, it uses the protected removeRange, and does essentially the exact same thing as Plamena's solution. The main difference is the number of method calls, and where the loop is. With a good JIT, I suspect they have fairly similar performance. Clearly, the big O is the same. –  Matthew Flaschen Jun 23 '10 at 21:30
1  
@Matthew: It depends on the List implementation. For ArrayList (in the OpenJDK sources, at least), removeRange calls System.arraycopy once and makes no other method calls. In this particular case, it moves 0 elements, so essentially all it does is set the array elements to null in a tight loop and update the size field. –  Adam Crume Jun 24 '10 at 0:07
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Why don't you try backwards?

int size = itemizedOverlay.size();
for(int n=size-1;n>0;n--)
{
    mapOverlays.remove(n);
}
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1  
-1 On some List implementations this will perform terribly, and it will never be anywhere near optimal. –  Kevin Bourrillion Jun 23 '10 at 17:39
    
@Kevin, the OP isn't using "some List." He said in no uncertain terms it's an ArrayList. As far as I know, this will be O(n) for all lists built into Java. This includes LinkedList. –  Matthew Flaschen Jun 23 '10 at 21:08
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I think it would be faster to create a new ArrayList with just the first element inside. something like :

E temp = mapOverlays.get(0);
mapOverlays = new ArrayList<E>().add(temp);
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Btw, Daniel's proposal is maybe better, because it doesn't create a new object. So references to the object stay. –  Agemen Jun 23 '10 at 7:12
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An ArrayList has integer indices from 0 to size() - 1. You could do:

int size = mapOverlays.size();
for(int n=1;n<size;n++)
{
    mapOverlays.remove(1);
}

This probably matches what you expect from PHP. It works by continually removing the 1th element, which changes. However, this has poor performance, since the internal array must constantly be shifted down. It is better to use clear() or go in reverse order.

It's too bad removeRange is protected, as that would be convenient for this type of operation.

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+1 for pointing out the performance disadvantage of your potential solution. Also... remember you can always extend ArrayList and make public any methods which were protected. –  Tim Bender Jun 23 '10 at 7:21
    
You don't need removeRange (and the issue is not that it's protected, but that it doesn't even exist on the List interface (and rightly so)). See Adam Crune's answer. –  Kevin Bourrillion Jun 23 '10 at 17:40
    
@Kevin, the OP isn't using the List interface, so that's a non-sequitur. You could argue he should, but maybe he is sure he explicitly wants an array-based class for its performance characteristics. –  Matthew Flaschen Jun 23 '10 at 21:13
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Simple.

mapOverlays = Collections.singletonList(mapOverlays.get(0));
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1  
Maybe not what the OP wants - the resulting list has nothing but the first element but you can't add anything to it anymore. So it's not a wrong answer but it introduces some limitations. –  Andreas_D Jun 23 '10 at 7:12
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I'm assuming that mapOverlays holds an ArrayList reference.

If mapOverlays is declared as a List or ArrayList, then mapOverlays.remove(n) will refer to the remove(int) method that removes the object at a given offset. (So far so good ...)

When you remove the nth element of an array using remove(int), the elements starting at position n + 1 and above all get moved down by one. So what you are doing won't actually work in most cases. (In fact, you are likely to remove about half of the elements you want to remove, and then get an IndexOutOfBoundsException.)

The best solution is either:

    for (int i = size - 1; i > 0; i--) {
        mapOverlays.remove(i);
    }

or

    tmp = mapOverlays.remove(0);
    mapOverlays.clear();
    mapOverlays.add(tmp);

(Note that the first solution always removes from the end of the list, avoiding the need to copy elements to fill in the hole left by the removed element. The performance different is significant for a large ArrayList.)

However, if mapOverlays is declared as a Collection, remove(n) will bind to the remove(<E>) overload which removes the object that matches its argument. Depending on the declared type, this will either give you a compilation error, or the int will be autoboxed as an Integer and you (probably) won't remove anything. GOTCHA!

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If you are using a java.util.List implementation instead of array, the size of the array gets smaller everytime you remove something and the n+1 item replaces the n item. This code will eventually result to ArrayIndecOutOfBoundsException when n becomes greated than the last index in the list.

Java also has an array type and the size of that one cannot be changed:

Object[] mapOverlay = //initialize the array here
int size = mapOverlay.length;
for(int n=1;n<size;n++)
{
    mapOverlay[n] = null;
}

I don't know PHP but this sounds like it's close to the behavior you are after. However the List implementations are more flexible and comfortable in use than the arrays.

EDIT: Here's a link to the Javadoc of List.remove(int): http://java.sun.com/javase/6/docs/api/java/util/List.html#remove%28int%29

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Use a while loop to remove everything after the first element:

while (mapOverlays.size() > 1) {
    mapOverlays.remove(1);
}

EDIT (see comment from Adam Crume)

If performance is a problem you should use this one

while (mapOverlays.size() > 1) {
    mapOverlays.remove(mapOverlays.size()-1);
}

even a bit micro-optimization

int last = mapOverlays.size() - 1;
while (last >= 1) {
    mapOverlays.remove(last);
    last -= 1;
}



If performance is really a problem (and the list has lots of elements), you should use the sublist solution. It's a bit harder to read but probably the fastest solution if the list instance can not be recreated (referenced elsewhere).

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For an ArrayList, this will perform very poorly - O(n^2) time - because it has to call System.arraycopy for nearly the entire array n-1 times. Remove the last element instead of the one at index 1, and it should be much better. –  Adam Crume Jun 26 '10 at 21:20
    
@Adam - correct, answer edited, and maybe the remove(1) solution is still worse than O(n^2) but I would prefer it for small lists for being more readable (IMO) - the question did not mention performance at all. The sublist solution is elegant and better (the best) but not everyone understands how sublist works. –  Carlos Heuberger Jun 28 '10 at 8:16
    
I don't care if people don't use sublist. I just think that reducing runtime from O(n^2) to O(n) is worth a small sacrifice to readability. The remove(1) solution may work fine for small lists, but I think it's better to have code that works well for any list. –  Adam Crume Jun 28 '10 at 17:36
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int size = mapOverlays.size();
for(int n=0;n<size;n++)
{
    mapOverlays.remove(n);
}

In java, if mapOverlays is list then it start with 0 as a first index.So n=0 in for loop.

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I think the OP wants to keep the first element in the list and remove everything else. –  Carlos Heuberger Jun 23 '10 at 12:26
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