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Java String.equals versus ==
whats the difference between ".equals and =="

public String getName() {
    return new String("foobar");
}

if(getName() != "foobar2") {
    //Never gets executed, it should, wtf!.
}

if(!getName().equals("foobar2")) {
   //This works how it should.
}

So yeah my question is simple.. why doesn't != behave the same as !equals() aka (not Equals).

I don't see any logicial reason why one should fail, both are the same exact code in my mind, WTH.

Looking at java operators http://download.oracle.com/javase/tutorial/java/nutsandbolts/operators.html

You can clearly see equality == !=

are the equality operators, sure I usually use != only on numbers.. but my mind started wandering and why doesn't it work for String?

EDIT: Here's something that looks more like the actual issue..

    for (ClassGen cg : client.getClasses().values()) {
        final ConstantPoolGen cp = cg.getConstantPool();
        if(cp.lookupInteger(0x11223344) != -1) {
            for (Method m : cg.getMethods()) {  
                System.out.println("lots of class spam");
                if(m.getName() != "<init>") continue;
                System.out.println("NEVER GETS HERE, 100% SURE IT HAS CONSTRUCTOR LOL");
            }
        }
    }
share|improve this question

marked as duplicate by Daniel Pryden, Jeremy Heiler, Zach L, Paŭlo Ebermann, Graviton Aug 16 '11 at 0:40

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.

    
I am unable to reproduce this behavior: ideone.com/0GhxJ –  Daniel Pryden Aug 16 '11 at 0:03
    
Also, != is not at all the same code as !equals(). The != operator compares for reference inequality, while equals() is a method. –  Daniel Pryden Aug 16 '11 at 0:05
    
You may also be interested in this question: Java String.equals versus == –  Daniel Pryden Aug 16 '11 at 0:07

4 Answers 4

up vote 0 down vote accepted

A string is an Object, not a primitive. == and != compare two primitives to each other. To compare strings you need to loop trough each character and compare them in order which is what .equals() does.

If you do any OOP in Java you need to override equals when you want to do equality checks on the Objects, and implement Comparable and .compare() if you want to be able to do things like sort them.

Here is a quick example of equals:

public class Person {
    public name;

    public Person(String name) {
        this.name = name;
    }

    public boolean equals(Object o){
        if(o instanceof Person)
            if(this.name.equals(o.name))
                return true;
        return false;
    }
}

Now a Person can be compared to another Person like:

person1.equals(person2)

Which will only return true if both people have the same name. You can define what makes two objects equal however you want, but objects are only == if they are really just two pointers to the same object in memory.

share|improve this answer
    
Blah I still find it strange when I program in C#.. well it's .NET after all I got used to using != and == on strings.. blah i guess thats where the differences kick in.. –  SSpoke Aug 16 '11 at 0:03
    
!= and == still work the exact same way in Java as in almost any other language. The difference is you have a wrapper class for a primitive which is the same but with a capital letter and it has helper methods like "equals()" which checks to see if the value is the same. This is very helpful for many reasons. –  citizen conn Aug 16 '11 at 0:07
1  
C# supports Operator overloading: msdn.microsoft.com/en-us/library/8edha89s(v=VS.71).aspx So == can be defined to mean anything. That's why it works on strings, but it could also be overloaded to do the same thing as != if someone wanted to. Java doesn't allow operator overloading although they went have way with strings and defined + to do concatenation. –  Paulpro Aug 16 '11 at 0:14
    
So the boolean equals(Object o) uses name == name which does a reference equality okay.. and instanceof checks if both classes are the same signature. But it never does equality check if name is the same string as in ASCII values LOL!, Unless person1.equals(person2) does the String.equals().. under the hood then does the overloaded equals after? –  SSpoke Aug 16 '11 at 0:27
    
@SSpoke Sorry haha, I meant this.name.equals(o.name) –  Paulpro Aug 16 '11 at 0:29

Using != means that you check for the instance reference in the memory, and the same instance will give you true on that comparison.

When you do a new String("foobar"), a new "foobar" is created in the memory, and the comparison using == returns false.

Calling a intern() on that new string may change this behavior, since the String will now be grabbed or added to the String pool.

In any case, it's safer to use the 'equals()'.

share|improve this answer
    
Also - you can read this little article that demonstrate it - javatechniques.com/blog/string-equality-and-interning –  sgibly Aug 16 '11 at 0:10
public static void main(String[] args) throws Exception {

    if (getName() != "foobar2") {
        System.out.println("1");
    }

    if (!getName().equals("foobar2")) {
        System.out.println("2");
    }
}

public static String getName() {
    return new String("foobar");
}

For me this outputs:

1
2

But those two checks are not equivalent. The first check is checking whether the object returned by getName() is the same object that was created for the string literal "foobar2", which it's not. The second check is probably the one you want, and it checks that the VALUE of the String object returned by the getName() method is equal to the VALUE of the String object created for your "foobar2" string literal.

So both checks will return true, the first one because they aren't the same object and the second one because the values aren't the same.

share|improve this answer
    
Yeah, I got the same result at ideone. I have no idea how SSpoke could have got the result described above. –  Daniel Pryden Aug 16 '11 at 0:14
    
Well it was just a example I did.. it actually doesn't work in my program which has a flow a bit changed I guess.. it's inside of a loop actually.. –  SSpoke Aug 16 '11 at 0:16
    
Updated with more like looking actual code. –  SSpoke Aug 16 '11 at 0:24

Operators only apply to primitives, not Objects, so a String comparison must be done equals, as that operates at the Object level.

--EDIT--

My comment was meant more along the lines of "the value of an Object cannot be compared in the expected way as in other languages". Of course you can use == signs, but not for a textual comparison. This is the classic question that is asked every time someone migrates to Java from a scripting language, or another language that does support operators for text comparison on Strings.

share|improve this answer
    
Haha a primitive is also a object no? look at Integer.class Float.class etc.. they are primitives but they are also Objects! –  SSpoke Aug 16 '11 at 0:01
1  
@SSpoke primitives are not objects, now. int i = 0; makes i a primitive of type int Integer i = new Integer(0); makes i and object of type Integer. Integer is an object wrapper for ints so that they can be used in places where only Objects are allowed. int is a primitive type though. They are different things. –  Paulpro Aug 16 '11 at 0:02
    
@SSpoke Like PaulPRO said, Java primitives are not objects. That said, the lines get blurred with Java's autoboxing/unboxing –  Zach L Aug 16 '11 at 0:05
    
Where are only Objects allowed though? i never encountered such a spot?. They seem to all work together just fine.. if you needed to do some advanced integer stuff why not just make Integer a factory class? I just don't get that. Ahh.. stupid question.. i guess you mean void(Object a) which can be casted to anything.. but how u cast it to number got it! –  SSpoke Aug 16 '11 at 0:06
1  
Operators only apply to primitives, not Objects[snip] That's incorrect. The == operator works perfectly fine with objects. Case in point: someObj == null and someObj == someOtherObj –  Jeremy Heiler Aug 16 '11 at 0:07

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