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I know that Java doesn't really use exact pass by reference, but rather pass by reference copy. This is why a swap function that just tried to swap references wouldn't work in Java. Does a for-each loop do this as well? For instance, given the following code...

for (Constraint c : getLeafNodes(constraintGraph)){
    c = new Constraint();
}

...I want to go through a recursively defined tree-like structure, and find all leaf nodes. Each leaf node needs to be replaced with a new, empty node. Will this do what I expect it to, or will it simply set a copy of the reference to each leaf node to a new node?

I wrote a similar method on another piece of code that passed unit tests, which makes me think a for-each loop uses references, not reference copy, but our code quality software flagged this as a dead-store to a local variable, major error.

Thanks.

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The for-each loop doesn't return anything (to whom?). Your question doesn't match the title. –  user unknown May 2 '11 at 15:55

3 Answers 3

up vote 8 down vote accepted

It won't do either. That's similar to saying

Object c = getObject();
c = new Object();

All you've done is change what c refers to. This wouldn't work even if Java supported true pass-by-reference

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2  
D'oh, you're right. I don't know what I was thinking. I should be retrieving the parent of each leaf, then calling some sort of parent.setChild(new Constraint()) method. Thanks. –  rybosome May 2 '11 at 15:39

Short answer: reference-copy

When you assign an iterator's variable, it will not be propagated to the collection. See the iterator as a read-only access to the list.

Java's for loop works exactly as C#'s for-each loop, in which while the Enumerator can moveNext it will assign to the local variable the Current element

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No it will not do what you expect. c is a local variable which refers/points to an element in the collection returned by getLeafNodes. Java does not have the reference concept you mention, everything is a reference copy. If you know e.g. C or C++, think of object variables in java as pointers not references.

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