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Pretty self explanatory: I need to modify the ArrayList that I receive, but I want the original to be unchanged.

I know this is very basic, and I'm not sure why I don't know the definitive answer. I guess better late than never though.

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it's a pointer. –  irreputable Feb 20 '11 at 1:17
    
Actually @irreputable, it is a doohickey. –  Stephen C Feb 20 '11 at 4:02
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4 Answers

up vote 4 down vote accepted

You will have a reference to the original ArrayList.

You can create a shallow copy of the list with clone().

Have a look at this question if you want a deep copy.

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@Felix Does a shallow copy mean that modifying it will modify the original copy? That would defeat the purpose of making a copy. –  efficiencyIsBliss Feb 20 '11 at 0:59
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Java is not pass by reference. It may appear so, but that's because no one really uses pass-by-reference (except some C++ programmers) and hence you people don't know what it means. References (pointer) are passed by value - that's a difference, both in theory and practice. –  delnan Feb 20 '11 at 1:01
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@efficiencyIsBliss: No. Follow the link, it says: Returns a shallow copy of this ArrayList instance. (The elements themselves are not copied.) So changes to the copy won't modify the original, but changes to the objects contained in the list will modify the original objects. –  Felix Kling Feb 20 '11 at 1:01
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@efficiencyIsBliss, I think you need a deeper understanding of reference types in Java. clone() will give you a new ArrayList which is completely independent of the old one, however, it will contain all the same references. Modifying one list will not affect the other list. However, if an object referenced by both lists is modified, the change of course will be visible through any reference to it. –  rlibby Feb 20 '11 at 1:03
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@Felix: Kling: Well, since no one actually knows what pass by reference means, we might as well hijack it and use it for the more common semantics ;) Seriously, pass by reference means you can set the caller's variables and nothign else - we shouldn't use it for anyting else. It may not matter in several cases, but it's still a wholly different thing. –  delnan Feb 20 '11 at 1:08
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Everything in java will be a reference by default. So yes changing the returned arraylist will modify the original one.

To prevent that problem you have to create a copy of the original one. Use the .clone() method for that.

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You can remove the by default. Java has only pointers (or references) on objects. –  Paŭlo Ebermann Feb 20 '11 at 2:59
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If you want a modified list, but not to modify the original, you shouldn't operate on the list which you received in arguments of the method because you operate on reference. Better use something like this:

public void modifyList(List myList) {
    myList.add("aaa"); // original *will* be modified
    List modifiable = new ArrayList(myList);
    modifiable.add("bbb"); // original will *not* be modified - only the copy
}
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It will be the same ArrayList. If you want a copy, you'll have to copy it yourself. Not necessarily easy if the ArrayList holds complex objects!

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