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I have a pointer address I obtained from the extern char etext, end and edata. I also obtained address of variables using &<Variable Name>. Both are hexadecimal pointer addresses.

I need to do arithmetic on those addresses in decimal. How do I do so? I need to convert the address into an int in decimal so I can find size of memory segments by subtracting addresses.

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I think you may be confused about what "hexadecimal" means. Numbers cannot be decimal or hexadecimal. Only string representations of numbers can be. –  Kerrek SB Jan 27 '13 at 16:41

4 Answers 4

Math is math. It doesn't matter what base you do it on. The computer is working only in base 2 anyway. Only during input or output does base matter. Bytewise arithmetic on pointers is possible if you interpret them as char * pointers:

ptrdiff_t segmentSize = (char *)segmentEndAddress - (char *)segmentStartAddress;

printf("Segment size in base 10: %td\n", segmentSize);
printf("Segment size in base 16: %tx\n", segmentSize);
printf("Segment size in base  8: %to\n", segmentSize);
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You can do arithmetic with pointers. Only be aware that the "unit" is not 1 but the size of the pointed object. So if p is a pointer to integer the difference in addresses between p+1 and p could be 4 bytes or more.

If you want to do arithmetic with addresses you should use pointers to char or convert them to such pointers.

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There is no "hexadecimal variables", rather variables that you can print in some representation. Moreover, the standard does not guarantee that an int can hold a pointer object. If you use C99 or C11, it is possible to use the optional type (u)intptr_t to do this.

uintptr_t n = (uintptr_t)(void *)etext;
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That's what uintptr_t is for. –  Carl Norum Jan 27 '13 at 16:42
    
However, the standard <stdint.h> has intptr_t which are guaranteed to fit pointers. –  Basile Starynkevitch Jan 27 '13 at 16:42
    
Please wait a minute. I was editing. :-p –  md5 Jan 27 '13 at 16:42
    
That initialization needs a cast. –  Carl Norum Jan 27 '13 at 16:48
    
@CarlNorum: A cast to uintptr_t? –  md5 Jan 27 '13 at 16:48

Both are hexadecimal pointer addresses...I need to do arithmetic on those addresses in decimal. How do I do so?

Decimal and hexadecimal are just representations... ways to display the number. But whether I write 10 or 0xA, they're still the same number. A pointer is a number, and you can represent that number in decimal or hexadecimal, but it's still just a number. So, you can do something like:

char *foo = "A dog and a cat";
int offset = 4;
char fifthChar = *(foo + offset);

Basically, you're adding 4 to the pointer foo and dereferencing the result, so that fifthChar will hold the character 'g'.

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Actually, sixth char (' ' before and)... C starts arrays at zero. –  Mats Petersson Jan 27 '13 at 16:57
    
@MatsPetersson Good catch -- changed the offset so that you really do get the 5th character now. ;-) –  Caleb Jan 27 '13 at 17:31

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