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If C does not support passing a variable by reference, why does this work?

#include <stdio.h>

void f(int *j) {
  (*j)++;
}

int main() {
  int i = 20;
  int *p = &i;
  f(p);
  printf("i = %d\n", i);

  return 0;
}

Output

$ gcc -std=c99 test.c
$ a.exe
i = 21 
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11 Answers

up vote 131 down vote accepted

Because you're passing the value of the pointer to the method and then dereferencing it to get the integer that is pointed to.

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29  
+1 for mentioning the phrase passing the value. That's the key point. –  LeakyCode Feb 9 '10 at 13:58
    
f(p); -> does this mean passing by value? then dereferencing it to get the integer that is pointed to. -> could you please give more explanation. –  bapi Mar 4 at 13:02
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In C, Pass-by-reference is simulated by passing the address of a variable (a pointer) and dereferencing that address within the function to read or write the actual variable. This will be referred to as "C style pass-by-reference."

Source: www-cs-students.stanford.edu

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Because there is no pass-by-reference in the above code. Using pointers (such as void func(int* p)) is pass-by-address. This is pass-by-reference in C++ (won't work in C):

void func(int& ref) {ref = 4;}

...
int a;
func(a);
// a is 4 now
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Your example works because you are passing the address of your variable to a function that manipulates its value with the dereference operator.

While C does not support reference data types, you can still simulate passing-by-reference by explicitly passing pointer values, as in your example.

The C++ reference data type is less powerful but considered safer than the pointer type inherited from C. This would be your example, adapted to use C++ references:

void f(int &j) {
  j++;
}

int main() {
  int i = 20;
  f(i);
  printf("i = %d\n", i);

  return 0;
}
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That Wikipedia article is about C++, not C. References existed before C++ and don't depend on special C++ syntax to exist. –  Roger Pate Feb 10 '10 at 3:52
    
@Roger: Good point... I removed explicit reference to C++ from my answer. –  Daniel Vassallo Feb 10 '10 at 8:44
    
And that new article says "a reference is often called a pointer" which isn't quite what your answer says. –  Roger Pate Feb 10 '10 at 16:13
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You're passing a pointer(address location) by value.

It's like saying "here's the place with the data I want you to update."

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p is a pointer variable. Its value is the address of i. When you call f, you pass the value of p, which is the address of i.

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Because you're passing a pointer(memory address) to the variable p into the function f. In other words you are passing a pointer not a reference.

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You're not passing an int by reference, you're passing a pointer-to-an-int by value. Different syntax, same meaning.

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+1 "Different syntax, same meaning." .. So the same thing, as the meaning matters more than the syntax. –  Roger Pate Feb 10 '10 at 3:51
    
Not true. By calling void func(int* ptr){ *ptr=111; int newValue=500; ptr = &newvalue } with int main(){ int value=0; func(&value); printf("%i\n",value); return 0; } , it prints 111 instead of 500. If you are passing by reference, it should print 500. C does not support passing parameter by reference. –  Konfle Dolex Feb 24 '13 at 4:39
    
@Konfle, if you are syntactically passing by reference, ptr = &newvalue would be disallowed. Regardless of the difference, I think you are pointing out that "same meaning" is not exactly true because you also have extra functionality in C (the ability to reassign the "reference" itself). –  xan Feb 24 '13 at 15:21
    
We never write something like ptr=&newvalue if it is passed by reference. Instead, we write ptr=newvalue Here is an example in C++: void func(int& ptr){ ptr=111; int newValue=500; ptr = newValue; } The value of the parameter passed into func() will become 500. –  Konfle Dolex Feb 24 '13 at 17:58
    
In the case of my comment above, it is pointless to pass param by reference. However, if the param is an object instead of POD, this will make a significant difference because any changed after param = new Class() inside a function would have no effect for the caller if it is passed by value(pointer). If param is passed by reference, the changes would be visible for the caller. –  Konfle Dolex Feb 24 '13 at 18:05
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No pass-by-reference in C, but p "refers" to i, and you pass p by value.

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In C, to pass by reference you use the address-of operator & which should be used against a variable, but in your case, since you have used the pointer variable p, you do not need to prefix it with the address-of operator. It would have been true if you used &i as the parameter: f(&i).

You can also add this, to dereference p and see how that value matches i:

printf("p=%d \n",*p);
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Why did you feel the need to repeat all of the code (including that comment block..) to tell him he should add a printf? –  Roger Pate Feb 10 '10 at 3:41
    
@Neil: That error was introduced by @William's edit, I'll reverse it now. And now it's apparent that tommieb is only mostly right: you can apply & to any object, not just variables. –  Roger Pate Feb 10 '10 at 5:07
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'Pass by reference' (by using pointers) has been in C from the beginning. Why do you think it's not?

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5  
Because it's technically not passing by reference. –  LeakyCode Feb 9 '10 at 14:32
5  
Passing a pointer value is not the same as pass-by-reference. Updating the value of j (not *j) in f() has no effect on i in main(). –  John Bode Feb 9 '10 at 14:34
    
+1 to John Bode's comment. –  Jim In Texas Feb 9 '10 at 16:10
1  
It is semantically the same thing as passing by reference, and that's good enough to say it is passing by reference. True, the C Standard does not use the term "reference", but that neither surprises me nor is a problem. We are also not speaking standardese on SO, even though we may refer to the standard, otherwise we'd see no one talking about rvalues (the C Standard doesn't use the term). –  Roger Pate Feb 10 '10 at 3:45
1  
@Jim: Thanks for telling us it was you that upvoted John's comment. –  Roger Pate Feb 10 '10 at 3:46
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