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I did search on this but the keywords must be too generic to narrow down the relevant bits. Why are both ways of declaring a string valid in android and is there any difference?

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1  
They are the same. I would recommend checking out this: docs.oracle.com/javase/tutorial/java/javaOO/… are basically instantiating a new instance of the String object. –  Robert Jan 4 '12 at 15:54
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Strings are immutable, so I suspect that there is no difference. You could examine the bytecode generated by each to see if there is any difference. –  Mitch Jan 4 '12 at 15:55
    
Probably should be closed as copy of String vs new String() –  Sulthan Jan 4 '12 at 16:05
    
Thanks for the links, and apologies for duplicating the question. I spent a good 10 minutes trying to find a similar Q before posting but there were way too many results to scroll through and many were c++ and ios related. This is what I wanted: "You very rarely would ever want to use the new String(anotherString) constructor. From the API..." –  wufoo Jan 4 '12 at 16:12

4 Answers 4

up vote 3 down vote accepted

This is java syntax and not only specific to Android. Here is a discussion on this. String vs new String()

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Using the new keyword you create a new string object, where using foo = "bar" will be optimized, to point to the same string object which is used in a different place in your app.

For instacne:

String foo = "bar";
String foo2 = "bar";

the compiler will optimize the above code to be the same exact object [foo == foo2, in conradiction to foo.equals(foo2)].

EDIT: after some search, @Sulthan was right. It is not compiler depended issue, it is in the specs:

A string literal always refers to the same instance (§4.3.1) of class String.

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This is not decided by compiler. The behavior is strictly defined. –  Sulthan Jan 4 '12 at 16:04
    
@Sulthan: Can you provide some reference to that statement? I failed to see it in the specs, but will gladly modify my answer if such can be provided. –  amit Jan 4 '12 at 16:05
    
Docs for String.intern(). All literal strings and string-valued constant expressions are interned –  Sulthan Jan 4 '12 at 16:08
    
@Sulthan: You were right, I found it in the specs. edited my answer. thanks for your comment. –  amit Jan 4 '12 at 16:09

This is not only about Android, it's about Java.

When you write "xxxx" it is a literal string. It's a String instance. Note, that all literal strings with the same value are the same instance. See method String.intern() for details.

Example:


String s1 = "abc";
String s2 = "abc";

in this example, s1 == s2 is true.

new String("xxx") is a copy constructor. You take one string (the literal) and you create a new instance from it. Since all strings are immutable, this is usually something you don't want to do.

Example:


String s1 = "abc";
String s2 = new String("abc");

s1.equals(s2) is true
s1 == s2 is false

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String x = new String( "x" )

effectively creates 2 Strings. One for the literal (which is a expression with no variable name) and one that you keep as x then. It is the same as:

String x;
{
  String a = "x";
  x = new String( a );
}
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