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I am interested in line 6, 7 and 8 in the code below.

#include <stdio.h>
#include <stdlib.h>

void go_south_east(int *lat, int *lon) {
  printf("Lat: %p, Long: %p\n", lat, lon);
  printf("Address of Lat: %p, Address of Long: %p\n", &lat, &lon);
  printf("Address of Lat: %p, Address of Long + 8 bytes?: %p\n", &lat, &lon+8);
  printf("Size of Lat: %lu, Size of Long: %lu\n", sizeof(lat), sizeof(lon));
  *lat -= 1;
  *lon += 1;
}

int main() {

  int latitude = 32;
  int longtitude = -64;
  go_south_east(&latitude, &longtitude);
  printf("Avast! Now at: [%i, %i]\n", latitude, longtitude);

  return 0;
}

The output I got was:

Address of Lat: 0x7fff5fbfe9e8, Address of Long: 0x7fff5fbfe9e0
Address of Lat: 0x7fff5fbfe9e8, Address of Long + 8 bytes?: 0x7fff5fbfea20 
Size of Lat: 8, Size of Long: 8

I understand that the size of the lat and long pointers are 8 bytes because they are long unsigned int. But why are they only 1 byte away from each other in the memory? Shouldn't they be 8 bytes away from each other since their size is 8 bytes? Please advice.


Thanks for all the helpful advice. I wished I could mark everyone's as answer but I can't. Really appreciate it.

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3  
0x7fff5fbfe9e8 - 0x7fff5fbfe9e0 == 8 –  William Pursell Sep 11 '12 at 16:40
    
They are 8 bytes apart (e0 to e8). –  Mark Wilkins Sep 11 '12 at 16:41
1  
@JohnLee That's because pointer arithmetic is not done in units of bytes, It's done in units of the type size.. &long + 8 does not mean "address of long plus 8 bytes" it means "address of long plus 8 units of long". It advances the address by sizeof(long)*8 bytes. –  nos Sep 11 '12 at 16:55
2  
No, lat and long are not long unsigned int; they're int*. Pointers are not integers. –  Keith Thompson Sep 11 '12 at 16:58
1  
@John Lee There's really nothing going on. A memory address is an index to a block of memory that's 8 bits wide. The next memory address is the index to the next block of memory, 8 bits wide. So there's 8 bits inbetween each address. Memory is not built so you can address individual bits, you can only address individual bytes. –  nos Sep 12 '12 at 7:19

4 Answers 4

up vote 1 down vote accepted

There's a wild mix up of completely different things and unexplainable assertions in your question.

Firstly, I don't see an long unsigned int pointers in your code. All pointers in your code have int * type. Where did long unsigned int come from?

Secondly, lat and lon are data pointers. Typically, in a non-exotic C implementation all data pointers have the same size. It doesn't matter what they point to. On your platform data pointers have 8-byte size. That means that pointers to char and well as pointers to double as well as pointers to unsigned long int will have the same 8-byte size.

Thirdly, where did you get the idea that they are 1 byte away in memory? The very first line in your output clearly shows that they are located at 0x7fff5fbfe9e8 and 0x7fff5fbfe9e0 addresses. These addresses are exactly 8 bytes away: 0x7fff5fbfe9e8 minus 0x7fff5fbfe9e0 equals 8. So, where did your "1 byte away" come from?

Fourthly, your code seems to suggest that &lon+8 changes the address by "8 bytes". This is incorrect. Adding 1 to a data pointer T* shifts it by sizeof(T) bytes, which means that &lon+8 actually changes the address by 8*8=64 bytes, which is exactly what you observe in your output: 0x7fff5fbfea20 minus 0x7fff5fbfe9e0 equals 64.

Basically, the questions you ask are directly contradicting what you observe in your output. That's kinda makes it virtually impossible to answer. It is like showing people a red handkerchief and asking why it is green.

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That is exactly why I ask this question. I know I am wrong, it's just that, I can't seem to convince my brain to think that it's red because of my lack of knowledge. In short, I couldn't model how the computer memory worked in my mind, which made me confused. –  John Lee Sep 11 '12 at 17:27

The difference between those two addresses is exactly 8, have a look again.

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They are eight bytes away from one another. PCs are byte addressable, not bit addressable.

That is to say that the numbered memory units are bytes.

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Pointer arithmetic actually adds the size of the data type to the address. To clarify:

int* i = 0;
i++;
printf("%p\n", i); // Prints 0x4, not 0x1

So

printf("Address of Lat: %p, Address of Long + 8 bytes?: %p\n", &lat, &lon+8);

Actually prints the address of lon + 8 * sizeof(&lon) bytes

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