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lets say I have an List. There is no problem to modify list's item in for loop:

for (int i = 0; i < list.size(); i++) { list.get(i).setId(i); }

But I have a SortedSet instead of list. How can I do the same with it? Thank you

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This will only work if setId() doesn't alter a field used by compareTo(). Ideally, all the fields used by compareTo should be final and immutable. – Peter Lawrey Nov 29 '11 at 13:23
up vote 4 down vote accepted

First of all, Set assumes that its elements are immutable (actually, mutable elements are permitted, but they must adhere to a very specific contract, which I doubt your class does).

This means that generally you can't modify a set element in-place like you're doing with the list.

The two basic operations that a Set supports are the addition and removal of elements. A modification can be thought of as a removal of the old element followed by the addition of the new one:

  1. You can take care of the removals while you're iterating, by using Iterator.remove();
  2. You could accumulate the additions in a separate container and call Set.addAll() at the end.
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He's not modifying the data structure..he's modifying the elements within while he iterates – mre Nov 29 '11 at 13:01

You cannot modify set's key, because it causes the set rehasing/reordering. So, it will be undefined behaviour how the iteration will run further.

You could remove elements using iterator.remove(). But you cannot add elements, usually better solution is to accumulate them in a new collection and addAll it after the iteration.

Set mySet = ...;
ArrayList newElems = new ArrayList();

for(final Iterator it = mySet.iterator(); it.hasNext(); )
{
  Object elem = it.next();
  if(...)
   newElems.add(...);
  else if(...)
   it.remove();
  ...
}
mySet.addAll(newElems);
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If id isn't a field used in the comparator, it's safe to do. – Mark Peters Nov 29 '11 at 12:58
    
@MarkPeters pardon? – kan Nov 29 '11 at 12:59
    
@kan, He's not modifying the data structure..he's modifying the elements within while he iterates. – mre Nov 29 '11 at 13:00
    
@Крысa Oh, right. Of course it's forbidden. If he need to change the id, he should it.remove the element, change the id and then newElems.add. – kan Nov 29 '11 at 13:02
    
@Крысa: Kan's point is that if the class's equality is based on the ID (which is being changed), then the integrity of the data structure is compromised. – Adamski Nov 29 '11 at 13:05

Since Java 1.6, you're able to use a NavigableSet.

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You should use an Iterator or better still the enhanced for-loop syntax (which depends on the class implementing the Iterable interface), irrespective of the Collection you're using. This abstracts away the mechanism used to traverse the collection and allows a new implementation to be substituted in without affecting the iteration routine.

For example:

Set<Foo> set = ...

// Enhanced for-loop syntax
for (Foo foo : set) {
 // ...
} 

// Iterator approach
Iterator it = set.iterator();
while (it.hasNext()) {
  Foo foo = it.next();
}

EDIT

Kan makes a good point regarding modifying the item's key. Assuming that your class's equals() and hashCode() methods are based solely on the "id" attribute (which you're changing) the safest approach would be to explicitly remove these from the Set as you iterate and add them to an "output" Set; e.g.

SortedSet<Foo> input = ...
SortedSet<Foo> output = new TreeSet<Foo>();

Iterator<Foo> it = input.iterator();
while (it.hasNext()) {
  Foo foo = it.next();
  it.remove(); // Remove from input set before updating ID.
  foo.setId(1);
  output.add(foo); // Add to output set.
}
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You cannot do that. But you may try, maybe you'll succeed, maybe you'll get ConcurrentModificationException. It's very important to remember, that modifying elements while iterating may have unexpected results. You should instead collect that elements in some collection. And after the iteration modify them one by one.

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This will only work, if id is not used for equals, or the comperator you used for the sorted set:

int counter = 0;
for(ElementFoo e : set) {
  e.setId(counter);
  couter++;
}
share|improve this answer
1  
The OP isn't removing items from the list; they're merely calling a mutator on each object. – Adamski Nov 29 '11 at 12:55
    
I don't need to remove the item. I have to update some fields. So the solution is to store new/updated/removed items in another list? – nKognito Nov 29 '11 at 12:56
    
@Adamski: yes, you are right, I changed the answer – Ralph Nov 29 '11 at 13:00

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