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This may be simple but it confuses me.

int x;
int *p = NULL;
int *q = &x;

What happens when

 q = p;   // Address where q points to equals NULL  .
 &x = q;  // I don't think this is possible  .
 *q = 7;  // Value of memory where q is pointing to is 7?  
 *q = &x  // That's just placing the address of x into memory where q points to right?  
 x = NULL;
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Is this a sequence of code? Very different things happen depending on how you combine those statements. –  rudolph9 Aug 19 '12 at 12:47
    
your comments are right. and x = NULL put 0 in x since NULL is a macro –  onemach Aug 19 '12 at 12:47
    
They're all right. &x = q doesn't work because &x is not an lvalue. x = NULL should be x = 0. –  cnicutar Aug 19 '12 at 12:47
    
no it's not a sequence; just different lines of code applying on the init. –  Thomas Aug 19 '12 at 13:45

2 Answers 2

up vote 5 down vote accepted

q = p;

Yes. q now points to NULL, just like p.

&x = q;

Not legal. You cannot reassign the address of a variable.

*q = 7;

Yes, sets the memory of the address where q is pointing to 7. If q points to NULL then this will cause an error.

*q = &x;

Not legal, q points to an integer, so you cannot assign an address to it. This is legal, as there is an implicit cast from int* (&x) to int (*q), but not very safe. In C++, it is just a plain error. You are right in saying that it places the address of x (cast to an int) into the memory pointed to by q.

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1  
*q = &x is legal in C, there is an implicit conversion, but it raises a warning in gcc. –  ninjalj Aug 19 '12 at 12:59
    
@ninjalj: Well spotted -- I'm too used to using C++ :-) I'll fix the mistake. –  Peter Alexander Aug 19 '12 at 13:12

Adding to peters explanation

*q=&x

this becomes legal at *q=(int)&x .However on a 32 bit OS its good to write *q=(long)&x.

Note:Some Compilers wont give you an error on  *q=&x

x = NULL;
x will become 0;

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