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I want to demonstrate with a few line of code that in Java, that to compare two strings (String), you have to use equals() instead of the operator ==.

Here is something I tried :

public static void main(String Args[]) {
   String s1 = "Hello";
   String s2 = "Hello";

   if (s1 == s2)
      System.out.println("same strings");
      System.out.println("different strings");

I was expecting this output : different strings, because with the test s1 == s2 I'm actually comparing two references (i.e. addresses) instead of the objet's content.

But I actually got this output : same strings !

Browsing the internet I found that some Java implementation will optimize the above code so that s1and s2 will actually reference the same string.

Well, how can I demonstrate the problem using the == operator when comparing Strings (or Objects) in Java ?

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Actually, per the JLS, all Java compilers should perform that optimization. – Darron Aug 31 '10 at 19:58

3 Answers 3

up vote 17 down vote accepted

The compiler does some optimizations in your case so that s1 and s2 are really the same object. You can work around that by using

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

Then you have two distinct objects with the same text content.

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thanks ! I didn't know that using new or not when instanciating a String would produce something different ! – Jérôme Sep 1 '10 at 5:59

Well, how can I demonstrate the problem using the == operator when comparing Strings (or Objects) in Java ?

Here a way:

String s = "ab";
String t = new String("ab");
System.out.println(s == t); // false

Also be careful when comparing primitive wrappers and using auto-boxing: Integer (and Long) for instance caches (and re-uses!) the values -128..127. So:

Integer s = -128;
Integer t = -128;
System.out.println(s == t);

will print true, while:

Integer s = -129;
Integer t = -129;
System.out.println(s == t);

prints false!

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Thanks. I didn't know about caching of values -128..127. I'm not sure to understand the reason why Java does that, but it's good to know ! – Jérôme Sep 1 '10 at 6:01
@Jérôme, this is done because the developers thought (think) these values were used so often that it was beneficial to not create new instances of these values each time. And since they're immutable, it can't hurt to re-use these instances. – Bart Kiers Sep 1 '10 at 6:33
Its a great example of Flyweight pattern. – Vivart Sep 1 '10 at 11:16

JAVA maintains a String Pool in the heap space, where it tries to have multiple references for same values if possible.

Had you written :

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

it would have given you the output : "different strings".'new' keyword creates a new object reference while not giving new will first check the string pool for its existence.

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