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suppose this code:

main()
{
    int *x;
    *x = 3;

    printf("%d %d %d\n", *x, &x, x);
    // output 3 5448392 2293524
}

if *x is the value; &x the addres; what does mean that value of x?

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5  
Note, you are accessing random memory with your *x = 3 as x is not initialized. –  Krizz Jan 26 '12 at 22:25

8 Answers 8

up vote 3 down vote accepted
Adr     value    expression
----------------------------------------------
5448392 2293524  &x address of x
2293524 3         x place where you assigned 3
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so when we declare a pointer we declare two variables :D –  Fabricio Apr 19 at 15:38
    
@Fabricio No, there is an adress where the value (3 in the question) is stored and the pointer itself needs also a place in memory to store the address of the value it is pointing to. –  stacker Apr 19 at 17:04
  • *x is the value (correct)
  • x is the address of the value. EDIT In your case, this address is uninitialized, so it is not pointing anywhere in particular (thanks Keith Nicholas for mentioning this).
  • &x is the address of the [pointer that should contain the] address of the value.

(it's worth pointing out that your program may crash :)

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last one is wrong, its the address of the pointer containing the address of the value. –  Keith Nicholas Jan 26 '12 at 22:35
    
second one is wrong also, it is a pointer ( which can contain an address of an int) and in his case it is uninitialized –  Keith Nicholas Jan 26 '12 at 22:36

x gives you the address in memory where value of *x, i.e. 3 is located. &x gives the address where value of x, i.e. 2293524 is located.

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x is not an address, its a pointer that contains the address... the difference is where a LOT of people get mucked up by pointers and addresses of locations. –  Keith Nicholas Jan 26 '12 at 22:32
    
@KeithNicholas: Thanks. I do understand the difference, just used wrong words. Is it better now? :) –  Sergey Kudriavtsev Jan 26 '12 at 22:34
    
yeah, i figured, once you know, its easy to shortcut the way you say things, I just know from trying to explain it to people who have never come across pointers that they get all mucked up –  Keith Nicholas Jan 26 '12 at 22:38

It is the address that x contains. Having been declared as a pointer, x stores an address, while &x is in a sense a pointer to a pointer.

EDIT: So I wasn't as precise as perhaps I should have been. &x is strictly speaking not a pointer to a pointer. It is the address of a pointer. In the following line of code, y is a pointer to a pointer:

int **y = &x;
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Did you mean "the address that contains x" ? –  paxdiablo Jan 26 '12 at 22:24
    
&x is not a pointer to a pointer.... very important as people get mucked up this, its just the address of the pointer, to make a pointer to a pointer you need to allocate/declare a pointer that you then put the address of the pointer into. –  Keith Nicholas Jan 26 '12 at 22:34
    
@paxdiablo No. I mean pretty much what I wrote. x is a pointer, so its value is an address. &x is the address of the memory containing x's value. –  Stephen Jan 26 '12 at 22:38
    
@KeithNicholas: Fair enough. Answer updated. :) –  Stephen Jan 26 '12 at 22:41
    
I have to disagree on your phrasing. The "address that x contains" is it's value, *x. That's because x is a pointer, and it "contains" *x. The "address that contains x" (&x) is its address. –  paxdiablo Jan 26 '12 at 22:52

x is a pointer to an int, its not an int itself, its not the address of an int, its a pointer.

a pointer contains an address of an int.

so, a missing step you have ( your program doesn't point x to anything! very dangerous)

int y = 5;
int *x;

x = &y     // put the memory location of y into the pointer

if you now print the contents of the pointer...

printf("%d\n", x);    // prints out the memory location of y; 

now to get to the value of what your pointer points to ( at the moment, y)

printf("%p\n", *x);    // prints out 5; 

now, just like y has a memory location, x also has a location in memory

so &x is where the pointer 'x' is in memory

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d conversion specifier with an argument of a pointer type is undefined behavior. –  ouah Jan 26 '12 at 22:38
    
Specifically, you should use %p to print pointer values, and cast the argument to (void *): printf("%p\n", (void *) x);. –  John Bode Jan 26 '12 at 23:56

x is uninitialized so it points to nowhere and dereferencing it with * is undefined behaviour.

The following would be a more correct (and useful) program

main()
{
    int x;   //declare an int variable
    int *xp; //declare a pointer to an int variable
    xp = &x;
    *xp = 3;

    printf("%d %d %d %d %d\n", x, &x, xp, *xp, &xp);
}

x is a value, xp and &xp point to that value, *xp can be used to access and change the value and &xp is a pointer to that pointer...

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d conversion specifier with an argument of a pointer type is undefined behavior. –  ouah Jan 26 '12 at 22:38
    
@ouah: I assumed it was not the best but kept it to avoid changing too much. Do you know any platform where this is an issue? –  hugomg Jan 27 '12 at 11:27

&x is the address of the pointer object. The value of the pointer is the address of an int.

Also, you shouldn't assign to *x as in your example: x doesn't point anywhere valid.

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x and &x values are of pointer types so you should use p conversion specifier to print their values.

printf("%d %p %p\n", *x, (void *) &x, (void *) x);

Don't forget to cast to void * otherwise the call to printfis undefined behavior. (p conversion specifier requires an argument of type void *).

int *x;
int y = 0;      
x = &y; 
*x = 3;

x is a pointer to int. *x is an int and its value is 3. And &x is a pointer to a pointer to int. Note that your pointer has to point to a valid object object (like above) otherwise it has an invalid value.

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