Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I remember reading a section, possibly in Bloch's Effective Java, that said that for most cases, where

String a = "fish";
String b = "fish";

that a == b in most cases because Strings are immutable. But that due to temporary construction of objects or some such, new String("fish") would yield a distinct object reference.

I looked through Bloch chapters on equals(), immutability, and object creation, but cannot find this bit I remember!! Tearing my hair out, does anyone remember where is the description of why this is? It may not even be in EJ but I'd like to find it. Hint: where is this explained is my actual question.

share|improve this question
    
Related: stackoverflow.com/questions/5777131/… –  Dirk Oct 20 '11 at 21:46
    
Related: stackoverflow.com/q/6558285/84378 –  Reverend Gonzo Oct 20 '11 at 21:52
    
Thanks I'll look at these after; I didn't see any titles that looked identical when I submitted, but I did look! –  orbfish Oct 20 '11 at 22:00

3 Answers 3

up vote 10 down vote accepted

It's not related to immutability. It's the way strings are handled by the JVM. A string literal with the same contents represents the same object ("string literal" means roughly "text surrounded by quotes"). There is a table of string objects in the JVM, and each string literal has exactly one object in that table.

However, when you expicitly create a new instance, you construct a new string object based on the string object taken from the table.

From any string formed by not using a literal (but by calling toString(), by instantiating, etc.) you can get the object from the jvm table by calling str.intern(). The intern() method returns exactly one instance for each character sequence that exists. new String("fish").intern() will return the same instance as simply String s = "fish"

There are two things to remember:

  • never use new String("something")
  • always compare strings with equals(..) (unless you really know what you are doing, and document it)
share|improve this answer
    
Do note that intern() puts the String on the table if it's not already there. This is perm gen space that won't be recovered by the garbage collector. Application code should very rarely if at all intern anything and never before you've used a memory profiler and found real reason to intern something at runtime. –  Barend Oct 20 '11 at 21:47
2  
@Bozho While you're definitely right on "never use new String("something")," the code like String s = hey.retrieveMeThatString(); s = new String(s); can be found in production code and in some cases even makes sense. –  alf Oct 20 '11 at 21:53
3  
@alf - in what cases? There is no point in making a "defensive copy" of an immutable object. –  Bozho Oct 20 '11 at 21:54
4  
@Bozho memory again. If you look at "a very long string".substring(6, 11), you'll see that its value field contains the whole original array, [a, ,v,e,r,y, ,l,o,n,g, ,s,t,r,i,n,g]. If you receive huge strings that you take apart in order to use parts for a long time, you don't want to keep the original objects. –  alf Oct 20 '11 at 21:58
1  

I think you are looking for String.intern() method which maintains a constant string pool.

The operator '==' compares object references (addresses) while .equals() is a method call which looks at semantic equivalence.

The compiler will look at String a = "fish" and String b = "fish" and then may or may not point to the same address. However, if you do a.intern(); b.intern() then it will probably put them in the same string pool and a == b.

share|improve this answer
    
Thank you both for the intern() method, I hadn't looked into that. –  orbfish Oct 20 '11 at 22:48

If you're looking for a definitive description, well, go to the definition: JLS § 3.10.5 String Literals.

The example code you should be familiar with is,

Thus, the test program consisting of the compilation unit (§7.3):

package testPackage;
class Test {
        public static void main(String[] args) {
                String hello = "Hello", lo = "lo";
                System.out.print((hello == "Hello") + " ");
                System.out.print((Other.hello == hello) + " ");
                System.out.print((other.Other.hello == hello) + " ");
                System.out.print((hello == ("Hel"+"lo")) + " ");
                System.out.print((hello == ("Hel"+lo)) + " ");
                System.out.println(hello == ("Hel"+lo).intern());
        }
}
class Other { static String hello = "Hello"; }

and the compilation unit:

package other;
public class Other { static String hello = "Hello"; }

produces the output:

true true true true false true
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.