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I'm fairly new to Java (been writing other stuff for many years) and unless I'm missing something (and I'm happy to be wrong here) the following is a fatal flaw...

String foo = new String();
thisDoesntWork(foo);
System.out.println(foo);//this prints nothing

public static void thisDoesntWork(String foo){
   foo = "howdy";
}

Now, I'm well aware of the (fairly poorly worded) concept that in java everything is passed by "value" and not "reference", but String is an object and has all sorts of bells and whistles, so, one would expect that unlike an int a user would be able to operate on the thing that's passed into the method (and not be stuck with the value set by the overloaded =).

Can someone explain to me what the reasoning behind this design choice was? As I said, I'm not looking to be right here, and perhaps I'm missing something obvious?

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I am not really sure what you are trying to say here. Please clarify it a bit? –  jrockway Feb 5 '09 at 3:54
    
the previous title was not good, because it would be impossible to search for your question's content by title. –  Robert Gould Feb 5 '09 at 3:56
    
no problem, this title makes more sense :) –  Genia S. Feb 5 '09 at 4:24
1  
Think of java reference variables as pointers and everything will be clear ;) –  Simucal Feb 5 '09 at 6:09
2  
also see stackoverflow.com/questions/2027/… –  grom Feb 5 '09 at 6:39
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15 Answers

up vote 11 down vote accepted

This rant explains it better than I could ever even try to:

In Java, primitives are passed by value. However, Objects are not passed by reference. A correct statement would be Object references are passed by value.

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4  
Glad you liked my rant ;) –  Scott Stanchfield Oct 28 '10 at 20:50
    
That's nice link, I think this should be the top answer. –  Reddy Aug 9 '11 at 13:22
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When you pass "foo", you're passing the reference to "foo" as a value to ThisDoesntWork(). That means that when you do the assignment to "foo" inside of your method, you are merely setting a local variable (foo)'s reference to be a reference to your new string.

Another thing to keep in mind when thinking about how strings behave in Java is that strings are immutable. It works the same way in C#, and for some good reasons:

  • Security: Nobody can jam data into your string and cause a buffer overflow error if nobody can modify it!
  • Speed : If you can be sure that your strings are immutable, you know its size is always the same and you don't ever have to do a move of the data structure in memory when you manipulate it. You (the language designer) also don't have to worry about implementing the String as a slow linked-list, either. This cuts both ways, though. Appending strings just using the + operator can be expensive memory-wise, and you will have to use a StringBuilder object to do this in a high-performance, memory-efficient way.

Now onto your bigger question. Why are objects passed this way? Well, if Java passed your string as what you'd traditionally call "by value", it would have to actually copy the entire string before passing it to your function. That's quite slow. If it passed the string by reference and let you change it (like C does), you'd have the problems I just listed.

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1  
it really doesn't have to do with the fact that strings are immutable. If he passed a List, the same thing would happen, and list are mutable –  Laplie Feb 5 '09 at 4:15
    
The problem at hand has nothing to do with immutability of String. The behaviour would be exactly the same with any other object. I'm not sure immutability of String has much to do with security, I think it's much more a performance issue. –  Axelle Ziegler Feb 5 '09 at 4:17
    
Edited accordingly. –  Dave Markle Feb 5 '09 at 4:18
2  
@Axelle: You're missing the meaning of "pass by reference". Java does pass arguments by value. If it had pass-by-reference, the effect would be very different. You need to understand what pass-by-reference really means. It's not the same as "pass a reference by value". –  Jon Skeet Feb 5 '09 at 7:11
1  
Let's all just imagine java references as C pointers. everything is so much more easy then: to modify the parameter, you just do what that guy did (foo = "howdy"). to modify the object pointed to (if any), you use stuff like "add" and so on if the object is not immutable. –  Johannes Schaub - litb Feb 5 '09 at 9:48
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Since my original answer was "Why it happened" and not "Why was the language designed so it happened," I'll give this another go.

To simplify things, I'll get rid of the method call and show what is happening in another way.

String a = "hello";
String b = a;
String b = "howdy"

System.out.print(a) //prints hello

To get the last statement to print "hello", b has to point to the same "hole" in memory that a points to (a pointer). This is what you want when you want pass by reference. There are a couple of reasons Java decided not to go this direction:

  • Pointers are Confusing The designers of Java tried to remove some of the more confusing things about other languages. Pointers are one of the most misunderstood and improperly used constructs of C/C++ along with operator overloading.

  • Pointers are Security Risks Pointers cause many security problems when misused. A malicious program assigns something to that part of memory, then what you thought was your object is actually someone else's. (Java already got rid of the biggest security problem, buffer overflows, with checked arrays)

  • Abstraction Leakage When you start dealing with "What's in memory and where" exactly, your abstraction becomes less of an abstraction. While abstraction leakage almost certainly creeps into a language, the designers didn't want to bake it in directly.

  • Objects Are All You Care About In Java, everything is an object, not the space an object occupies. Adding pointers would make the space an object occupies importantant, though.......

You could emulate what you want by creating a "Hole" object. You could even use generics to make it type safe. For example:

public class Hole<T> {
   private T objectInHole;

   public void putInHole(T object) {
      this.objectInHole = object;
   }
   public T getOutOfHole() {
      return objectInHole;
   }

   public String toString() {
      return objectInHole.toString();
   }
   .....equals, hashCode, etc.
}


Hole<String> foo = new Hole<String)();
foo.putInHole(new String());
System.out.println(foo); //this prints nothing
thisWorks(foo);
System.out.println(foo);//this prints howdy

public static void thisWorks(Hole<String> foo){
   foo.putInHole("howdy");
}
share|improve this answer
    
Good answer, only last part with the code example is maybe a bit too contrived, and distracts from the important stuff you wrote above. –  eljenso Feb 14 '09 at 17:47
    
"Uncontrolled" pointers can be confusing and risky. Not all languages use pointers like C/C++ and let you randomly point to odd places or objects. Java simply has well-controlled pointers. –  Scott Stanchfield Oct 28 '10 at 20:52
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Your question as asked doesn't really have to do with passing by value, passing by reference, or the fact that strings are immutable (as others have stated).

Inside the method, you actually create a local variable (I'll call that one "localFoo") that points to the same reference as your original variable ("originalFoo").

When you assign "howdy" to localFoo, you don't change where originalFoo is pointing.

If you did something like:

String a = "";
String b = a;
String b = "howdy"?

Would you expect:

System.out.print(a)

to print out "howdy" ? It prints out "".

You can't change what originalFoo points to by changing what localFoo points to. You can modify the object that both point to (if it wasn't immutable). For example,

List foo = new ArrayList();
System.out.println(foo.size());//this prints 0

thisDoesntWork(foo);
System.out.println(foo.size());//this prints 1

public static void thisDoesntWork(List foo){   
    foo.add(new Object);
}
share|improve this answer
    
It has everything to do with pass by value vs pass by reference. With real pass-by-reference parameters (e.g. "ref" in C#) you could pass the string variable by reference and it would be changed. –  Jon Skeet Feb 5 '09 at 7:04
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In java all variables passed are actually passed around by value- even objects. All variables passed to a method are actually copies of the original value. In the case of your string example the original pointer ( its actually a reference - but to avoid confusion ill use a different word ) is copied into a new variable which becomes the parameter to the method.

It would be a pain if everything was by reference. One would need to make private copies all over the place which would definitely be a real pain. Everybody knows that using immutability for value types etc makes your programs infinitely simpler and more scalable.

Some benefits include: - No need to make defensive copies. - Threadsafe - no need to worry about locking just in case someone else wants to change the object.

share|improve this answer
    
Everything is by reference in Java. –  Axelle Ziegler Feb 5 '09 at 4:57
    
WRONG WRONG WRONG. Primitive values are not by reference. You cannot pass a reference to an "int" living in one method - aka a local variable to another method and modify the first local variable. –  mP. Feb 5 '09 at 5:02
    
Well, every object is passed by reference. Passing value types by reference doesn't make sense anyway. –  Axelle Ziegler Feb 5 '09 at 5:11
2  
@Axelle, no, objects aren't passed by reference. Passing value types by reference does make sense. Please use a language which allows real pass-by-reference semantics (e.g. C# using "ref" parameters). Java is strictly pass-by-value. –  Jon Skeet Feb 5 '09 at 7:07
    
@jon, Its not the language but the platform that prevents java from supporting 'by ref'. –  mP. Aug 12 '11 at 10:29
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The problem is you are instantiating a Java reference type. Then you pass that reference type to a static method, and reassign it to a locally scoped variable.

It has nothing to do with immutability. Exactly the same thing would have happened for a mutable reference type.

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If we would make a rough C and assembler analogy:

void Main()
{ 
	 // stack memory address of message is 0x8001.  memory address of Hello is 0x0001.  
	 string message = "Hello"; 
	 // assembly equivalent of: message = "Hello";
	 // [0x8001] = 0x0001

	 // message's stack memory address
	 printf("%d", &message); // 0x8001

	 printf("%d", message); // memory pointed to of message(0x8001): 0x0001
	 PassStringByValue(message); // pass the pointer pointed to of message.  0x0001, not 0x8001
	 printf("%d", message); // memory pointed to of message(0x8001): 0x0001.  still the same

	 // message's stack memory address doesn't change
	 printf("%d", &message); // 0x8001
}

void PassStringByValue(string foo)
{
	printf("%d", &foo); // &foo contains foo's *stack* address (0x4001)

	// foo(0x4001) contains the memory pointed to of message, 0x0001
	printf("%d", foo);  // 0x0001
	// World is in memory address 0x0002
	foo = "World";  // on foo's memory address (0x4001), change the memory it pointed to, 0x0002
	// assembly equivalent of: foo = "World":
	// [0x4001] = 0x0002

	// print the new memory pointed by foo
	printf("%d", foo); // 0x0002

	// Conclusion: Not in any way 0x8001 was involved in this function.  Hence you cannot change the Main's message value.
	// foo = "World"  is same as [0x4001] = 0x0002

}


void Main()
{
	 // stack memory address of message is 0x8001.  memory address of Hello is 0x0001.  
	 string message = "Hello"; 
	 // assembly equivalent of: message = "Hello";
	 // [0x8001] = 0x0001

	 // message's stack memory address
	 printf("%d", &message); // 0x8001

	 printf("%d", message); // memory pointed to of message(0x8001): 0x0001
	 PassStringByRef(ref message); // pass the stack memory address of message.  0x8001, not 0x0001
	 printf("%d", message); // memory pointed to of message(0x8001): 0x0002. was changed

	 // message's stack memory address doesn't change
	 printf("%d", &message); // 0x8001
}


void PassStringByRef(ref string foo)
{
	printf("%d", &foo); // &foo contains foo's *stack* address (0x4001)

	// foo(0x4001) contains the address of message(0x8001)
	printf("%d", foo);  // 0x8001
	// World is in memory address 0x0002
	foo = "World"; // on message's memory address (0x8001), change the memory it pointed to, 0x0002
	// assembly equivalent of: foo = "World":
	// [0x8001] = 0x0002;


	// print the new memory pointed to of message
	printf("%d", foo); // 0x0002

	// Conclusion: 0x8001 was involved in this function.  Hence you can change the Main's message value.
	// foo = "World"  is same as [0x8001] = 0x0002

}

One possible reason why everything is passed by value in Java, its language designer folks want to simplify the language and make everything done in OOP manner.

They would rather have you design an integer swapper using objects than them provide a first class support for by-reference passing, the same for delegate(Gosling feels icky with pointer to function, he would rather cram that functionality to objects) and enum.

They over-simplify(everything is object) the language to the detriment of not having first class support for most language constructs, e.g. passing by reference, delegates, enum, properties comes to mind.

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Are you sure it prints null? I think it will be just blank as when you initialized the foo variable you provided empty String.

The assigning of foo in thisDoesntWork method is not changing the reference of the foo variable defined in class so the foo in System.out.println(foo) will still point to the old empty string object.

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Its not initialized with an empty string, AFAICS. –  Adeel Ansari Feb 5 '09 at 4:10
    
yea, sorry, typo.. I'll correct –  Genia S. Feb 5 '09 at 4:16
    
Vinegar I meant empty String object –  Bhushan Bhangale Feb 5 '09 at 4:21
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Dave, you have to forgive me (well, I guess you don't "have to", but I'd rather you did) but that explanation is not overly convincing. The Security gains are fairly minimal since anyone who needs to change the value of the string will find a way to do it with some ugly workaround. And speed?! You yourself (quite correctly) assert that the whole business with the + is extremely expensive.

The rest of you guys, please understand that I GET how it works, I'm asking WHY it works that way... please stop explaining the difference between the methodologies.

(and I honestly am not looking for any sort of fight here, btw, I just don't see how this was a rational decision).

share|improve this answer
    
Well, you are obviously missing something. The example you show has nothing to do with name-passing it's only a question of how parameters are bound inside a method (and it's actually helpful to understand the difference between a parameter and a variable). –  Axelle Ziegler Feb 5 '09 at 4:30
    
@Dr.Dredel: It's for simplicity, both in the language and when reading code. When I call a method and pass in a string reference, I know that the method won't change it. While evil code could (in some cases) get round it, the more common case is non-evil code - where you just want to be able (cont) –  Jon Skeet Feb 5 '09 at 7:09
    
to reason about the code easily. When you pass references by value, it's easier to understand what the code will do. In C#, you can pass parameters by reference - but it's still rare, because it makes the code harder to understand. –  Jon Skeet Feb 5 '09 at 7:10
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@Axelle

Mate do you really know the difference between passing by value and by reference ?

In java even references are passed by value. When you pass a reference to an object you are getting a copy of the reference pointer in the second variable. Tahts why the second variable can be changed without affecting the first.

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Yes. Yes I do. I'm just confounded by the (seemingly) retarded way in which Java implements String. It's an object, I SHOULD be able to modify one of its members (the one that's holding the chars) to whatever I want, wherever it goes. You pass in a list you can add() to it, right? –  Genia S. Feb 5 '09 at 12:08
1  
Making String immutable was a great decision on the part of the Java designers (which is why that decision was also used in .NET). Otherwise we'd be defensively copying all over the place... <shudder> –  Jon Skeet Feb 5 '09 at 12:51
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It is because, it creates a local variable inside the method. what would be an easy way (which I'm pretty sure would work) would be:

String foo = new String();    

thisDoesntWork(foo);    
System.out.println(foo); //this prints nothing

public static void thisDoesntWork(String foo) {    
   this.foo = foo; //this makes the local variable go to the main variable    
   foo = "howdy";    
}
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-1 The OP is not trying to get the code fixed. This does not answer the OP's question: Can someone explain to me what the reasoning behind this design choice was? –  Alberto Aug 28 '12 at 15:54
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If you think of an object as just the fields in the object then objects are passed by reference in Java because a method can modify the fields of a parameter and a caller can observe the modification. However, if you also think of an object as it's identity then objects are passed by value because a method can't change the identity of a parameter in a way that the caller can observe. So I would say Java is pass-by-value.

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This is because inside "thisDoesntWork", you are effectively destroying the local value of foo. If you want to pass by reference in this way, can always encapsulate the String inside another object, say in an array.

class Test {

    public static void main(String[] args) {
        String [] fooArray = new String[1];
        fooArray[0] = new String("foo");

        System.out.println("main: " + fooArray[0]);
        thisWorks(fooArray);
        System.out.println("main: " + fooArray[0]);
    }

    public static void thisWorks(String [] foo){
        System.out.println("thisWorks: " + foo[0]);
        foo[0] = "howdy";
        System.out.println("thisWorks: " + foo[0]);
    }
}

Results in the following output:

main: foo
thisWorks: foo
thisWorks: howdy
main: howdy
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Reference typed arguments are passed as references to objects themselves (not references to other variables that refer to objects). You can call methods on the object that has been passed. However, in your code sample:

public static void thisDoesntWork(String foo){
    foo = "howdy";
}

you are only storing a reference to the string "howdy" in a variable that is local to the method. That local variable (foo) was initialized to the value of the caller's foo when the method was called, but has no reference to the caller's variable itself. After initialization:

caller     data     method
------    ------    ------
(foo) -->   ""   <-- (foo)

After the assignment in your method:

caller     data     method
------    ------    ------
(foo) -->   ""
          "hello" <-- (foo)

You have another issues there: String instances are immutable (by design, for security) so you can't modify its value.

If you really want your method to provide an initial value for your string (or at any time in its life, for that matter), then have your method return a String value which you assign to the caller's variable at the point of the call. Something like this, for example:

String foo = thisWorks();
System.out.println(foo);//this prints the value assigned to foo in initialization 

public static String thisWorks(){
    return "howdy";
}
share|improve this answer
    
No, reference types aren't passed by reference. The value of the argument (which is a reference) is passed by value. This is not the same as pass by reference semantics. –  Jon Skeet Feb 5 '09 at 7:25
    
Java uses copy semantics, and it will pass a copy of the reference to a method. Hence, references are passed by value. –  eljenso Feb 5 '09 at 10:17
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Go do the really big tutorial on suns website.

You seem not to understand the difference scopes variables can be. "foo" is local to your method. Nothing outside of that method can change what "foo" points too. The "foo" being referred to your method is a completely different field - its a static field on your enclosing class.

Scoping is especially important as you dont want everything to be visible to everything else in your system.

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no, I understand scoping intimately. I don't understand the value of making it impossible to alter the value of a non primitive object passed into a method. I guess, ultimately, I'm just longing for the option to do either, as is the case in C, and asking why this was removed in Java. –  Genia S. Feb 5 '09 at 4:23
    
And look at the mess that is C, no encapsulation in any form. Any line of code anywhere int he system can magically change values and trash your program if your lucky. –  mP. Feb 5 '09 at 5:03
    
Dr Dredel. Your question was badly worded. It appeared from your example you also did not understand scopes. If you did you would appreciate that references are also scoped. When passing object references around you are getting a copy of the reference pointer. Objects can have many pointers to them –  mP. Feb 5 '09 at 5:50
    
I don't seriously have to defend C, here, do I? –  Genia S. Feb 5 '09 at 12:04
    
Passing by reference is equivalent to passing pointers - with a few restrictions. By value simplies this problem and leads to better encapsulation. Start to think of the problems C has and then think why did SUN simply certain aspects when designing Java. –  mP. Feb 5 '09 at 21:53
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