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I have a program as follows:

public class abcd { 
public static void main(String args[]){
    List<Integer> a = new ArrayList<Integer>();
    a.add(1);
    a.add(3);
    new abcd().ab(a);
    System.out.println(a.toString());

}
public void ab(List<Integer> a){
    List<Integer> b = new ArrayList<Integer>();
    b=a;
    b.add(5);
}

}

As I know, java is pass by value. But why does it print out [1, 3, 5] instead of [1, 3] in this example?

And how can I do to pass a into the method, do something on a inside the method and make a same when exit the method?

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marked as duplicate by devnull, Elliott Frisch, Raging Bull, Simon MᶜKenzie, dsolimano May 12 at 4:59

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

2  
You assign the reference of a to b, in ab. Nothing strange here. –  iccthedral Mar 8 '13 at 11:32
4  
See this answer. –  Eng.Fouad Mar 8 '13 at 11:36
    
Nothing...Just indexing is done here –  Prabhath kesav Mar 8 '13 at 12:20

5 Answers 5

up vote 10 down vote accepted
public void ab(List<Integer> a){
    List<Integer> b = new ArrayList<Integer>();
    b=a;
    b.add(5);
}

This means you're passing a reference to a List to ab() by value. This isn't copying the whole List to do a pass by value (which would be too slow), but only the reference (pointer) to the List. So a is actually not a List, but a reference to a List.

List<Integer> b = new ArrayList<Integer>();

This line is useless since you're re-assigning b on next line

b = a

Keep in mind this lines DOES NOT copy the whole list a to b, but only copies the reference to the list. Now both a and b reference (point) to the same List. So it doesn't matter if you use a.add() or b.add(), you'll be modifying the same List.

EDIT: if you want a copy of the List, you can simply do:

List<Integer> b = new ArrayList<Integer>(a);

as explained here. This will create a new List referenced by b which has all the elements of the List referenced by a. Of course you need no b = a after this.

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I using this line List<Integer> b = new ArrayList<Integer>() since I want to keep the list a in the main() unchangable. If so, is there any way to passing the reference a to the method, do something inside the method, but remain a when exit the method? @m0skit0 –  Eve Mar 8 '13 at 12:25
    
Looks like you want a copy of the List. Then you can do List<Integer> b = new ArrayList<Integer>(a);. This will copy the contents of the list a to b, b being a reference to a new List. But don't do b = a after this. –  m0skit0 Mar 8 '13 at 12:30
    
Thanks! It works!@m0skit0 –  Eve Mar 8 '13 at 12:35
    
You're welcome. And welcome to SO: don't forget to mark the answer as valid :) –  m0skit0 Mar 8 '13 at 12:41

I know, java is pass by value. But why does it print out [1, 3, 5] instead of [1, 3]

Because the reference is passed by value. and when you do b=a; both b and a are pointing to same ArrayList that was passed from main.

List<Integer> b = new ArrayList<Integer>();

b is pointing to a new ArrayList object.

b=a;

b is pointing where a is pointing.

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Because b and a point to same location in heap and now when you do any operation on the list that is pointed by b it is going to affect the same list.

Non-primitive parameter's references are pass by value but the memory location that is pointed by them is the same. So changing anything using any reference variable will affect the same object

enter image description here

So the scenario is presented in the picture when you pass the reference a to the method and then you have b which also points to same list now in the heap as illustrated in the figure for String. So changing list using any reference will affect same list object in heap.

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Thanks. Now I understand a and b points to the same list at the begining in the method. But from the figure, each different string in heap would be an along String object like "abc" and "abcdef". If so, why are [1,3] and [1,3,5] still the same arraylist in the heap after modification? @Narendra Pathai –  Eve Mar 8 '13 at 12:24
    
I did not get your question. –  Narendra Pathai Mar 8 '13 at 13:42
    
I guess you should read docs.oracle.com/javase/tutorial/java/javaOO/objectcreation.html this for being totally clear. If still you have any doubts feel free to ask. –  Narendra Pathai Mar 8 '13 at 13:47

When you pass objects (reference variable) of class then it is pass by reference by value so in your case a has the reference of List and when you add 5 in the ab method it gets added to the initial object.

So to explain further I have created a diagram and uploaded here (Please do let me know of your suggestions): http://www.flickr.com/photos/8071081@N04/8543689754/

(I am not able to upload diagrams on this site)

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wrong. There is no pass by reference. And you cannot "pass objects". –  newacct Mar 8 '13 at 21:37
    
@newacct I have now clarified what I meant and have also presented a diagram to clarify further. –  user_CC Mar 10 '13 at 0:39

The object a and b hold references to the same object after the assignment of b. This is known as "Copy/Cloning" problem which is can be read at Cloning (programming).

A solution to clone an ArrayList in Java to avoid pointing to the same object can be found in: How do I clone a generic List in Java?

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1  
This is confusing. a and b are not objects. –  newacct Mar 8 '13 at 21:37
    
a & b are instances of ArrayList, and the most parent of the ArrayList (the ancestor) is java.lang.Object. How could you say an instance of a class in Java is not an object? –  jaselg Mar 9 '13 at 5:48
2  
a and b are references. Their type is a reference type. Objects are not values in Java. The references are pointers to objects. –  newacct Mar 9 '13 at 8:07
1  
Ok, my bad! It should be understood correctly that a new ArrayList() will create an object and the assigned variable will hold a reference to it. –  jaselg Mar 9 '13 at 8:29

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