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If

String x = "abc";
 String y = "abc";

What is the memory allocation for x and y ?

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1  
What do you mean by "What is the memory allocation"? Also, is this homework? You've been asking a series of iPhone-related questions so it's rather surprising to see a Java question out of the blue. –  BoltClock Feb 11 '11 at 17:17
    
what exactly do you mean by "memory allocation"? –  Argote Feb 11 '11 at 17:17
    
I think the OP is asking whether the string "abc" will be interned. –  Juliet Feb 11 '11 at 17:18
    
is x and y are refer to same memory or different memory locations –  kiran kumar Feb 11 '11 at 17:19

4 Answers 4

up vote 7 down vote accepted

The two variables will each take as much space as is required for a reference.

The two references will both have the same value - that is, they'll refer to the same object - due to interning of string literals. In other words, there will only be one String object. However many times you execute this piece of code (within the same classloader, at least) the values of x and y will always refer to the same single object.

The two variables are still independent, of course - you can change one without changing the other:

String x = "abc";
String y = "abc";
x = "def";
System.out.println(y); // Still prints abc
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You should add that changing either of the variables creates a new Object, as is the case for all String "modifications". –  Argote Feb 11 '11 at 17:29
1  
@Argote, saying "assigning creates a new Object" is not strictly correct. If you assign an existing string to one of these references, it will be changed, but no new object will be created, obviously. –  Sergey Tachenov Feb 11 '11 at 17:40
    
@Argote: Sergey is right. It's not the assignment which creates the new object. –  Jon Skeet Feb 11 '11 at 17:41
    
@Sergey good point –  Argote Feb 11 '11 at 18:08

Here is a nice reference regarding string literals in Java. I guess you are interested in this quotation:

If String objects having the same data are created using a constant expression, a string literal, a reference to an existing string, or by explicitly using the intern() method, their references will be the same.

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There is only one string which be placed in the String literal pool. No matter how many times you run these two lines e.g in a loop, not more objects will be allocated.

EDIT: If you want to create more objects you can do this.

String x = new String("abc"); // don't do this
String y = new String("xyz"); // don't do this either.

This creates an object every time because you told it to. ;)

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if i do change String x value "abc" to "xyz" does it creates new allocation? –  kiran kumar Feb 11 '11 at 17:22
    
When the class loads it creates two String literals, but doesn't allocate any more objects. –  Peter Lawrey Feb 11 '11 at 17:27
    
@kiran, yes, if you do that, you will have three objects: one for the string literal "xyz", and two strings x and y with identical content, but occupying different memory areas. But it makes no sense to do so. –  Sergey Tachenov Feb 11 '11 at 17:45

String x = "abc"; it will create one string object and one reference variable. "abc" will go into the pool and x will refer to it.

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