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First of all, I searched about this in both S.O. and Google. If you say this is a duplicate of something somewhere, that something is being really hard to reach.

Well... we know Strings are Objects and must be compared by using equals, right?

Then, please, explain that:

String s1 = new String("string");
String s2 = new String("string");
String s3 = "string";

System.out.println(s1.equals(s2));  // true
System.out.println(s1 == s2);       // false

System.out.println(s1 == "string"); // false
System.out.println(s2 == "string"); // false
System.out.println(s3 == "string"); // true

Regarding the == "string" outputs, why does only the last one prints "true"?

When they're created, they aren't all Strings? Is now my third String the ugly duckling? ...Worse: if I'm working with a foreign String... it may not be the String that I think it is?! (Notice that s3 has String before it, not some primitive.)

...I'm pretty sure s3 has an object inside it.

In other words, what's the difference between declaring a String like this:

String s1 = new String("string");

and another like this:

String s3 = "string";

?

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marked as duplicate by EJP, Bohemian, tereško, webarto, Lusitanian Feb 11 '13 at 23:54

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.

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Re: "I searched about this in both S.O. and Google": If you add the word intern to your searches -- or just look up the Javadoc for String.intern -- you'll have more luck. –  ruakh Dec 2 '12 at 17:39
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Nice. This means I have to know the existence of this intern you know, which I didn't know. –  user1870636 Dec 2 '12 at 17:40
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The Related questions to your right mean you really didn't search hard enough. –  Perception Dec 2 '12 at 17:41
    
@UndeoV.E.: Yes, I wasn't criticizing. Sometimes it's hard to find an answer that you don't already more-or-less know. –  ruakh Dec 2 '12 at 17:41
    
@EJP Thanks, that helps, but it's hardly a duplicate. Although the OP got to something similar after some EDITs, the main question was the total opposite. –  user1870636 Dec 2 '12 at 17:51
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4 Answers

up vote 3 down vote accepted

When you do String s1 = new String("string");, it creates a new String object in the memory and holds the reference through s1. Similary by String s2 = new String("string");, you get another String object reference through s2.

== operator compares the object references hence s1 == s2 is false because they are difference string objects.

When you say String s3 = "string";, it creates an String constant literal object in internal pool (String class maintains internal pool) and assigns the reference to s3.

More details in the specification below:

All literal strings and string-valued constant expressions are interned. String literals are defined in §3.10.5 of the Java Language Specification

Now when you say, s3=="string", "string" is referencing the same String object reference as s3(Java does the optimization in creating anonymous constant literal so same value literals are not created again). Thus this comparison is resulting into true.

This is not the case with s1 and s2 as each are referring an explicit String objects in memory.

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Well, Java uses a lot of "ideas" we usually wouldn't imagine it's happening in the background. –  user1870636 Dec 2 '12 at 19:22
    
@UndeoV.E. True. It's all done for possible optimizations. –  Yogendra Singh Dec 2 '12 at 19:23
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Some values of String type can be interned, that is, several instances of String having equal value can point to the same object. For such instances == will work correctly, although you can't rely on this behavior, unless you called intern() explicitly.

You can try following snippet which will always print true:

    String s1 = new String("a").intern();
    String s2 = "a".intern();

    System.out.println(s1 == s2);
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The compiler will search for hardcoded literals like "string", and replace them with the same reference object.

Your other two objects should return true on equals(), but they are different object's at all, because you're using the new operator.

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1  
Re: "if they occure often": Not true. Interning occurs for all string literals (and other compile-time constant string expressions), not just ones that occur often. See §3.10.5 "String Literals" of The Java Language Specification, Java SE 7 Edition‌​. –  ruakh Dec 2 '12 at 17:43
    
my fault, thanks for that hint! –  Chasmo Dec 2 '12 at 17:45
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I hope you know about SCP(string constant pool) in java. When you create string using new it will create new reference like normal java object... But when you declare like s3 = "string " it will create reference in SCP only once for same value string.It means if you create any other like s5 = "string" it will point same reference it won't create new reference. == will check only reference but .equals() method check value. In your program "string" string value already stored in scp area so when you check s3 == "string " its returning true. Its not creating new reference. If you want more clarety post comment...

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