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I have a bug which I don't understand.

In this piece of code the value of p should be the address from programs:

static struct ProgramList{
    struct Program *program;
    struct ProgramList *next;
} programs = {NULL, NULL};

struct ProgramList *p = &programs;

... only it doesn't. The adress in p is 0x0097c130 and the adress of programs is 0x0097c144.

Any ideas what to do?

Edit: I'm working in Microsoft Visual Studio I'm checking the addresses with the watch function of the debugger. I am checking p and &programs. Edit2: The address of p is 0x0040f89c. I know I'm looking for the value of p not it's address.

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How are you checking those addresses? – Mike Mar 5 '13 at 13:33
Are you perhaps checking the address of p? – Daniel Fischer Mar 5 '13 at 13:34
Are you sure you're not confusing p with &p? – Kerrek SB Mar 5 '13 at 13:35
It is the same: link. – dasblinkenlight Mar 5 '13 at 13:36
Please show us a minimal, compilable testcase. Minimal means "using the bare essentials to reproduce the problem", and compilable means "using enough code to reproduce the problem on our systems without guessing, filling in blanks or correcting syntax errors". We should be able to copy/paste into our editors, compile and run to reproduce your bug. We should be able to display the entire testcase on one A4 page. – Seb Mar 5 '13 at 13:37

2 Answers 2


int main(int argc, char **argv) {
  struct P *p = &programs;
  printf("%p %p %p\n", &programs, p, &p);

has this result:

bf@bf-laptop:~/playground$ ./testprogram

0x804a01c 0x804a01c 0xbfe32a4c

So, &programs and p are the same, but the address of p is different.

Basically, &programs is the address of where the struct programs is located. p is the location where the address to programs is stored. &p is the address where that address is stored.

In a schematic:

[address]   [name]    [value]
0x804a01c   programs  <programs struct>
0xbfe32a4c  p         0x804a01c
share|improve this answer

Your method of checking the addresses is incorrect, try this:

struct ProgramList *p = &programs;
printf("%p %p\n", p, &programs);

And you should see they are the same. I suspect you're doing something like:

printf("%p %p\n", &p, &programs);

Which is the address of your pointer (not the value of it).

As per your comment, you can check via that printf as well as long as the conditions are correct:

if(p == &programs)
    printf("I failed"); // will print "I failed" because the values are the same.

Since you said you were using VS debugger I dusted it off and stuck that code in there, looks like even in VS 2010 it's showing the same values so it's not a Microsoft trick:

enter image description here

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I'll know it's not the address of p I'm looking for. The weird thing is that if I add this: if (*p == &programs) printf("I failed"); Doesn't print anything – Tremnor Mar 5 '13 at 13:43
@Tremnor - Same problem there you want if(p == &programs) printf("I failed"); Note the removal of the * in my version – Mike Mar 5 '13 at 13:48
Yes sorry I didn't copy paste it from my actual code. This is my actual code: if(p != &programs) printf("I failed"); – Tremnor Mar 5 '13 at 14:11

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