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Simply put, I have a method with an ArrayList parameter. In the method I modify the contents of the ArrayList for purposes relevant only to what is returned by the method. Therefore, I do not want the ArrayList which is being passed as the parameter to be be affected at all (ie: not passed as a reference).

Everything I have tried has failed to achieve the desired effect. What do I need to do so that I can make use of a copy of the ArrayList within the method only, but not have it change the actual variable?

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You could pass Collections#unmodifiable(yourList) in order to send an unmodifiable copy of your list. –  Luiggi Mendoza Apr 3 '13 at 4:05
    
You could also create a new copy of the ArrayList in the method that is modifying it. While it won't effect the first ArrayList, any objects you change within will still be changed... –  MadProgrammer Apr 3 '13 at 4:06
    
Are you modifying the list only? Or also what is inside of the list? –  Daniel Williams Apr 3 '13 at 4:12
    
Does anyone know if System.arraycopy will just copy the references or clone the objects in the array as well?? I looked for the source and ran into an end because it's a native method.. –  Thihara Apr 3 '13 at 4:48

6 Answers 6

up vote 7 down vote accepted

Even if you had a way to pass the array list as a copy and not by reference it would have been only a shallow copy.

I would do something like:

void foo(ArrayList list) {

    ArrayList listCopy = new ArrayList(list);
    // Rest of the code

}

And just work on the copied list.

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That will do it. I originally tried setting the internal list equal to the parameter, but that didn't work. This is by far the simplest solution. –  Wolfram Apr 3 '13 at 4:10
1  
Indeed, there is a required waiting period before being able to accept an answer. –  Wolfram Apr 3 '13 at 4:22

You could use the .clone method or a CopyOnWriteArrayList to make a copy, thereby not impacting the original.

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IMHO, that seems excessive, what's wrong with new ArrayList(list)? –  MadProgrammer Apr 3 '13 at 4:07
    
@MadProgrammer You mean IMMO right? –  Thihara Apr 3 '13 at 4:09

You could pass Collections#unmodifiableList(yourList) in order to send an unmodifiable copy of your list. By the way, your List<Whatever> is passed by value since Java always pass by value, note that in foo(List<Whatever> list) method you can not modify the list value but you can modify its contents.

public class MyClass {

    List<Whatever> list = new ArrayList<Whatever>();

    public void bar() {
        //filling list...
        foo(Collections.unmodifiableList(list));
    }

    public void foo(List<Whatever> list) {
        //do what you want with list except modifying it...
    }
}
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Try this in you method :

void method(List<Integer> list) {
        List copyList =  new ArrayList<Integer>();
        copyList.addAll(list); // This will create a copy of all the emlements of your original list
    }
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Better yet do new ArrayList<Integer>(list) –  Steve Kuo Apr 3 '13 at 5:06

Just clone it.

public ArrayList cloneArrayList(ArrayList lst){
    ArrayList list = new ArrayList();
    for (int i=0; i<lst.size(); i++){
        list.add(lst.get(i));
    }
    return list;
}

Add suggested in the comments, you can also use

ArrayList copy = new ArrayList(original);

and also

ArrayList copy = new ArrayList();
copy.addAll(original);
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2  
IMHO, that seems excessive, what's wrong with new ArrayList(list)? –  MadProgrammer Apr 3 '13 at 4:07
1  
And why not addAll? –  WChargin Apr 3 '13 at 4:07
    
I don't know of the existance of new ArrayList(list). Sorry. –  Sri Harsha Chilakapati Apr 3 '13 at 4:09
    
@SriHarshaChilakapati Don't be sorry for learning something new –  MadProgrammer Apr 3 '13 at 4:13
    
Yeah. Thanks for showing it up. –  Sri Harsha Chilakapati Apr 3 '13 at 4:16

You can create a copy of the ArrayList using ArrayList's copy constructor:

ArrayList copy = new ArrayList(original);

But if the elements of the list are also objects, then you must be aware that modifying a member of the copy will also modify that member in the original.

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