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When learning a new programming language, one of the possible roadblocks you might encounter is the question whether the language is, by default, pass-by-value or pass-by-reference

So here is my question to all of you, in your favorite language, how is it actually done? and what are the possible pitfalls?

your favorite language can, of course, be anything you have ever played with: popular, obscure, esoteric, new, old ...

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closed as not constructive by Jeremy Banks, Daniel, Lukas Eder, casperOne Aug 14 '12 at 15:03

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There is already an answer on here that explains the situation in PHP5. –  Mat Aug 5 '08 at 9:02
1  
Wow - this question has a link to the beta server. I think you'd beta fix the link. –  Andrew Grimm Jun 10 '10 at 4:06
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11 Answers

Here is my own contribution for the Java programming language.

first some code:

public void swap(int x, int y)
{
int tmp = x;
x = y;
y = tmp;
}

calling this method will result in this:

int pi = 3;
int everything = 42;

swap(pi, everything);

System.out.println("pi: " + pi);
System.out.println("everything: " + everything);

"Output:
pi: 3
everything: 42"

even using 'real' objects will show a similar result:

public class MyObj {
private String msg;
private int number;

//getters and setters
public String getMsg() {
return this.msg;
}


public void setMsg(String msg) {
this.msg = msg;
}


public int getNumber() {
return this.number;
}


public void setNumber(int number) {
this.number = number;
}

//constructor
public MyObj(String msg, int number) {
setMsg(msg);
setNumber(number);
}
}

public static void swap(MyObj x, MyObj y)
{
MyObj tmp = x;
x = y;
y = tmp;
}

public static void main(String args[]) {
MyObj x = new MyObj("Hello world", 1);
MyObj y = new MyObj("Goodbye Cruel World", -1);

swap(x, y);

System.out.println(x.getMsg() + " -- "+ x.getNumber());
System.out.println(y.getMsg() + " -- "+ y.getNumber());
}


"Output:
Hello world -- 1
Goodbye Cruel World -- -1"

thus it is clear that Java passes its parameters by value, as the value for pi and everything and the MyObj objects aren't swapped. be aware that "by value" is the only way in java to pass parameters to a method. (for example a language like c++ allows the developer to pass a parameter by reference using '&' after the parameter's type)

now the tricky part, or at least the part that will confuse most of the new java developers: (borrowed from javaworld)
Original author: Tony Sintes

public void tricky(Point arg1, Point arg2)
{
arg1.x = 100;
arg1.y = 100;
Point temp = arg1;
arg1 = arg2;
arg2 = temp;
}
public static void main(String [] args)
{
Point pnt1 = new Point(0,0);
Point pnt2 = new Point(0,0);
System.out.println("X: " + pnt1.x + " Y: " +pnt1.y);
System.out.println("X: " + pnt2.x + " Y: " +pnt2.y);
System.out.println(" ");
tricky(pnt1,pnt2);
System.out.println("X: " + pnt1.x + " Y:" + pnt1.y);
System.out.println("X: " + pnt2.x + " Y: " +pnt2.y);
}


"Output
X: 0 Y: 0
X: 0 Y: 0
X: 100 Y: 100
X: 0 Y: 0"

tricky successfully changes the value of pnt1! This would imply that Objects are passed by reference, this is not the case! A correct statement would be: the Object references are passed by value.

more from Tony Sintes:

The method successfully alters the value of pnt1, even though it is passed by value; however, a swap of pnt1 and pnt2 fails! This is the major source of confusion. In the main() method, pnt1 and pnt2 are nothing more than object references. When you pass pnt1 and pnt2 to the tricky() method, Java passes the references by value just like any other parameter. This means the references passed to the method are actually copies of the original references. Figure 1 below shows two references pointing to the same object after Java passes an object to a method.

figure 1

Conclusion or a long story short:

  • Java passes it parameters by value
  • "by value" is the only way in java to pass a parameter to a method
  • using methods from the object given as parameter will alter the object as the references point to the original objects. (if that method itself alters some values)

useful links:

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Here is another article for the c# programming language

c# passes its arguments by value (by default)

private void swap(string a, string b) {
string tmp = a;
a = b;
b = tmp;
}

calling this version of swap will thus have no result:

string x = "foo";
string y = "bar";
swap(x, y);

"output:
x: foo
y: bar"

however, unlike java c# does give the developer the opportunity to pass parameters by reference, this is done by using the 'ref' keyword before the type of the parameter:

private void swap(ref string a, ref string b) {
string tmp = a;
a = b;
b = tmp;
}

this swap will change the value of the referenced parameter:

string x = "foo";
string y = "bar";
swap(x, y);

"output:
x: bar
y: foo"

c# also has a out keyword, and the difference between ref and out is a subtle one. from msdn:

The caller of a method which takes an out parameter is not required to assign to the variable passed as the out parameter prior to the call; however, the callee is required to assign to the out parameter before returning.

and

In contrast ref parameters are considered initially assigned by the callee. As such, the callee is not required to assign to the ref parameter before use. Ref parameters are passed both into and out of a method.

a small pitfall is, like in java, that objects passed by value can still be changed using their inner methods

conclusion:

  • c# passes its parameters, by default, by value
  • but when needed parameters can also be passed by reference using the ref keyword
  • inner methods from a parameter passed by value will alter the object (if that method itself alters some values)

useful links:

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Python uses pass-by-value, but since all such values are object references, the net effect is something akin to pass-by-reference. However, Python programmers think more about whether an object type is mutable or immutable. Mutable objects can be changed in-place (e.g., dictionaries, lists, user-defined objects), whereas immutable objects can't (e.g., integers, strings, tuples).

The following example shows a function that is passed two arguments, an immutable string, and a mutable list.

>>> def do_something(a, b):
...     a = "Red"
...     b.append("Blue")
... 
>>> a = "Yellow"
>>> b = ["Black", "Burgundy"]
>>> do_something(a, b)
>>> print a, b
Yellow ['Black', 'Burgundy', 'Blue']

The line a = "Red" merely creates a local name, a, for the string value "Red" and has no effect on the passed-in argument (which is now hidden, as a must refer to the local name from then on). Assignment is not an in-place operation, regardless of whether the argument is mutable or immutable.

The b parameter is a reference to a mutable list object, and the .append() method performs an in-place extension of the list, tacking on the new "Blue" string value.

(Because string objects are immutable, they don't have any methods that support in-place modifications.)

Once the function returns, the re-assignment of a has had no effect, while the extension of b clearly shows pass-by-reference style call semantics.

As mentioned before, even if the argument for a is a mutable type, the re-assignment within the function is not an in-place operation, and so there would be no change to the passed argument's value:

>>> a = ["Purple", "Violet"]
>>> do_something(a, b)
>>> print a, b
['Purple', 'Violet'] ['Black', 'Burgundy', 'Blue', 'Blue']

If you didn't want your list modified by the called function, you would instead use the immutable tuple type (identified by the parentheses in the literal form, rather than square brackets), which does not support the in-place .append() method:

>>> a = "Yellow"
>>> b = ("Black", "Burgundy")
>>> do_something(a, b)
Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
  File "<stdin>", line 3, in do_something
AttributeError: 'tuple' object has no attribute 'append'
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From what I've read in a quick scan of Python argument passing discussions on the web, most Python folks don't know what pass by reference means. Python is definitely pass by value. Immutability of values is a separate issue. And then there are folks who get confused with dictionary bindings, and don't understand that a symbol binding to a reference to a value in a dictionary is the same thing as a variable holding a reference to a value. Pass by reference is where you pass a reference to the variable, not the value; or in symbol parlance, where you pass a mutable name binding along. –  Barry Kelly Feb 13 '10 at 6:02
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Since I haven't seen a Perl answer yet, I thought I'd write one.

Under the hood, Perl works effectively as pass-by-reference. Variables as function call arguments are passed referentially, constants are passed as read-only values, and results of expressions are passed as temporaries. The usual idioms to construct argument lists by list assignment from @_, or by shift tend to hide this from the user, giving the appearance of pass-by-value:

sub incr {
  my ( $x ) = @_;
  $x++;
}

my $value = 1;
incr($value);
say "Value is now $value";

This will print Value is now 1 because the $x++ has incremented the lexical variable declared within the incr() function, rather than the variable passed in. This pass-by-value style is usually what is wanted most of the time, as functions that modify their arguments are rare in Perl, and the style should be avoided.

However, if for some reason this behaviour is specifically desired, it can be achieved by operating directly on elements of the @_ array, because they will be aliases for variables passed into the function.

sub incr {
  $_[0]++;
}

my $value = 1;
incr($value);
say "Value is now $value";

This time it will print Value is now 2, because the $_[0]++ expression incremented the actual $value variable. The way this works is that under the hood @_ is not a real array like most other arrays (such as would be obtained by my @array), but instead its elements are built directly out of the arguments passed to a function call. This allows you to construct pass-by-reference semantics if that would be required. Function call arguments that are plain variables are inserted as-is into this array, and constants or results of more complex expressions are inserted as read-only temporaries.

It is however exceedingly rare to do this in practice, because Perl supports reference values; that is, values that refer to other variables. Normally it is far clearer to construct a function that has an obvious side-effect on a variable, by passing in a reference to that variable. This is a clear indication to the reader at the callsite, that pass-by-reference semantics are in effect.

sub incr_ref {
  my ( $ref ) = @_;
  $$ref++;
}

my $value = 1;
incr(\$value);
say "Value is now $value";

Here the \ operator yields a reference in much the same way as the & address-of operator in C.

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Don't forget there is also pass by name, and pass by value-result.

Pass by value-result is similar to pass by value, with the added aspect that the value is set in the original variable that was passed as the parameter. It can, to some extent, avoid interference with global variables. It is apparently better in partitioned memory, where a pass by reference could cause a page fault (Reference).

Pass by name means that the values are only calculated when they are actually used, rather than at the start of the procedure. Algol used pass-by-name, but an interesting side effect is that is it very difficult to write a swap procedure (Reference). Also, the expression passed by name is re-evaluated each time it is accessed, which can also have side effects.

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There's a good explanation here for .NET.

A lot of people are surprise that reference objects are actually passed by value (in both C# and Java). It's a copy of a stack address. This prevents a method from changing where the object actually points to, but still allows a method to change the values of the object. In C# its possible to pass a reference by reference, which means you can change where an actual object points to.

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by value

  • is slower than by reference since the system has to copy the parameter
  • used for input only

by reference

  • faster since only a pointer is passed
  • used for input and output
  • can be very dangerous if used in conjunction with global variables
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Doesn't really answer the question, but +1 for laying down the facts. –  MPelletier Nov 21 '09 at 16:49
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Concerning J, while there is only, AFAIK, passing by value, there is a form of passing by reference which enables moving a lot of data. You simply pass something known as a locale to a verb (or function). It can be an instance of a class or just a generic container.

spaceused=: [: 7!:5 <
exectime =: 6!:2
big_chunk_of_data =. i. 1000 1000 100
passbyvalue =: 3 : 0
    $ y
    ''
)
locale =. cocreate''
big_chunk_of_data__locale =. big_chunk_of_data
passbyreference =: 3 : 0
    l =. y
    $ big_chunk_of_data__l
    ''
)
exectime 'passbyvalue big_chunk_of_data'
   0.00205586720663967
exectime 'passbyreference locale'
   8.57957102144893e_6

The obvious disadvantage is that you need to know the name of your variable in some way in the called function. But this technique can move a lot of data painlessly. That's why, while technically not pass by reference, I call it "pretty much that".

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Whatever you say as pass-by-value or pass-by-reference must be consistent across languages. The most common and consistent definition used across languages is that with pass-by-reference, you can pass a variable to a function "normally" (i.e. without explicitly taking address or anything like that), and the function can assign to (not mutate the contents of) the parameter inside the function and it will have the same effect as assigning to the variable in the calling scope.

From this view, the languages are grouped as follows; each group having the same passing semantics. If you think that two languages should not be put in the same group, I challenge you to come up with an example that distinguishes them.

The vast majority of languages including C, Java, Python, Ruby, JavaScript, Scheme, OCaml, Standard ML, Go, Objective-C, Smalltalk, etc. are all pass-by-value only. Passing a pointer value (some languages call it a "reference") does not count as pass by reference; we are only concerned about the thing passed, the pointer, not the thing pointed to.

Languages such as C++, C#, PHP are by default pass-by-value like the languages above, but functions can explicitly declare parameters to be pass-by-reference, using & or ref.

Perl is always pass-by-reference; however, in practice people almost always copy the values after getting it, thus using it in a pass-by-value way.

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C should not be in the same group as Java and the likes, because in C it is possible take the address of a variable and pass that to a function. This makes it possible for the called function to change the value of the variable. That is, it is possible to do pass-by-reference in C. –  fishinear Mar 2 at 15:54
    
@fishinear: Nope. That's pass-by-value. It's copying the value passed (a pointer). –  newacct Mar 3 at 3:35
    
Exactly. In C it is passible to achieve conceptual pass-by-reference by passing a pointer to the variable. That is not possible in a language like Java, and therefore C (and Objective-C) should be in a separate category. –  fishinear Mar 3 at 11:02
    
@fishinear: Nope. Pass-by-value and pass-by-reference are semantics concepts dealing with the structure of the syntax. It has nothing to do with "conceptual". There is no pass-by-reference in C or Objective-C. –  newacct Mar 3 at 11:07
    
You asked for reasons why two languages should not be in the same category. I give you such a valid reason (it is possible to achieve conceptual pass-by-reference in C, but not in Java), and you respond by sticking your head in the sand. Not very becoming. –  fishinear Mar 3 at 11:15
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PHP is also pass by value.

<?php
class Holder {
    private $value;

    public function __construct($value) {
        $this->value = $value;
    }

    public function getValue() {
        return $this->value;
    }
}

function swap($x, $y) {
    $tmp = $x;
    $x = $y;
    $y = $tmp;
}

$a = new Holder('a');
$b = new Holder('b');
swap($a, $b);

echo $a->getValue() . ", " . $b->getValue() . "\n";

Outputs:

a b

However in PHP4 objects were treated like primitives. Which means:

<?php
$myData = new Holder('this should be replaced');

function replaceWithGreeting($holder) {
    $myData->setValue('hello');
}

replaceWithGreeting($myData);
echo $myData->getValue(); // Prints out "this should be replaced"
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By default, ANSI/ISO C uses either--it depends on how you declare your function and its parameters.

If you declare your function parameters as pointers then the function will be pass-by-reference, and if you declare your function parameters as not-pointer variables then the function will be pass-by-value.

void swap(int *x, int *y);   //< Declared as pass-by-reference.
void swap(int x, int y);     //< Declared as pass-by-value (and probably doesn't do anything useful.)

You can run into problems if you create a function that returns a pointer to a non-static variable that was created within that function. The returned value of the following code would be undefined--there is no way to know if the memory space allocated to the temporary variable created in the function was overwritten or not.

float *FtoC(float temp)
{
    float c;
    c = (temp-32)*9/5;
    return &c;
}

You could, however, return a reference to a static variable or a pointer that was passed in the parameter list.

float *FtoC(float *temp)
{
    *temp = (*temp-32)*9/5;
    return temp;
}
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1  
-1. This is wrong. C is always pass-by-value. If you declare the parameter to be an int, an int will be passed by value, if you declare the parameter to be a float, a float will be passed by value, and if you declare the parameter to be a pointer, a pointer will be passed by value, but there is never pass-by-reference. –  Jörg W Mittag Feb 25 '12 at 4:11
    
@JörgWMittag: In ANSI/ISO C, pointers are references. –  oosterwal Apr 6 '12 at 19:34
1  
… which are passed by value. –  Jörg W Mittag Apr 7 '12 at 8:25
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