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I have the following code:

Widget[] widgetArray = widgetService.getAllWidgets();
List<Widget> widgets = Arrays.asList(widgetArray);

// Prune out any Widgets named "Melvin".
Iterator<Widget> iter = widgets.iterator();
while(iter.hasNext()) {
    Widget w = iter.next();

    if("Melvin".equals(w.getName()))
        iter.remove();
}

When I run this code I get a runtime java.lang.UnsupportedOperationExceptionError with a vague exception message of null that gets thrown on the iter.remove() line. It seems that some Java Iterators don't support the remove method and will throw this exception.

I can't change the widgetService.getAllWidgets() method to return a List<Widget> and am stuck with the Widget[] array return value.

So I ask: what can I do to loop through my widgets array and dynamically prune out ones that are named "Melvin"?

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4 Answers 4

up vote 3 down vote accepted

If you can afford it, just make a mutable copy of the list. Replace

List<Widget> widgets = Arrays.asList(widgetArray);

with

List<Widget> widgets = new ArrayList<Widget>(Arrays.asList(widgetArray));
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Just defer removal until the iterator is done:

Widget[] widgetArray = widgetService.getAllWidgets();
List<Widget> widgets = Arrays.asList(widgetArray);

// Prune out any Widgets named "Melvin".
List<Widget> toRemove = new ArrayList<Widget>();
Iterator<Widget> iter = widgets.iterator();
while(iter.hasNext()) {
    Widget w = iter.next();

    if("Melvin".equals(w.getName()))
        toRemove.add(w);
}
widgets.removeAll(toRemove);

Alternatively, just build the list from eligible widgets using the inverse logic:

List<Widget> widgets = new ArrayList<Widget>();
// Add all Widgets not named "Melvin"
for (Widget w : widgetService.getAllWidgets()) {
    if(!"Melvin".equals(w.getName()))
        widgets.add(w);
}
share|improve this answer
    
Thanks @Ted Hopp (+1) - I thought of that too (the concept of a "to remove" 2ndary list), I guess I'm just finding it hard to believe that Java doesn't have something a little more elegant baked in... –  user1768830 Nov 21 '12 at 21:29
1  
The widgets List is a fixed-size "list view of the specified array" (see JavaDoc) and cannot remove entries, because you cannot remove entries from an array. Even widgets.removeAll(...) should fail for the same reason (didn't test it). So the way to go would be to follow Guido Simone's answer (copy all into a fresh ArrayList and then prune), or your second solution (copy filtered). –  Christian Semrau Nov 21 '12 at 21:42
    
Yes I can confirm that the widgets.removeAll(...) fails for the same reason. Implementing @Guido Simone's solution... –  user1768830 Nov 21 '12 at 21:45

The asList() list is still backed by the array.

You may want to loop through each element of the array and add it to a brand new list. This would take two loops.

Or better yet, compare the string value and then add to the list. This way, you have one loop and a brand new list.

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Saw the first answer too late. Almost same as above. –  Akber Choudhry Nov 21 '12 at 21:33

With guava you can get rid of all that code and let a fast, well tested library take care of it for you.

Collection<Widget> noMelvins = Collections2.filter( Arrays.asList(widgetArray), new Predicate<Widget>() {
    @Override public boolean apply( final Widget arg) {
        return !"Melvin".equals(arg.getName());
    }
});
share|improve this answer
    
adding new libaries to a project is not necessary for this –  Jan Schmidt Nov 21 '12 at 21:41
    
A downvote for suggesting a tool that's explicitly made for this situation? Odd judgement. Who's to say guava isn't already in the project or that he's not doing something similar in 25 other places in the project? Plenty of other viewers may find value in this answer. Nothing wrong with adding another tool to the bag. –  digitaljoel Nov 21 '12 at 21:49
    
Although I didn't use your suggestion, agreed (+1) –  user1768830 Nov 21 '12 at 21:52
1  
Apache Commons has a very similar utility with CollectionUtils.filter() –  Ted Hopp Nov 21 '12 at 23:47

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