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How can I know the distance in bytes between 2 pointers? For example: Distance between p1 and p2

I would like to know how many bytes there are between p2 and p1 ( in this case 3) because to reach p2 with p1 I have to do 3 steps...
step1 p1 is in B
step2 p1 is in C
step3 p1 is in D

so i need that return to me 3
I'm asking this type of question because I'm implementing the lz77 algorithm

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  • 2
    Just do (const char *)p2 - (const char *)p1? Aug 11, 2014 at 16:14
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    @DrewMcGowen: Why const? Aug 11, 2014 at 17:15
  • 1
    it doesnt work p1 and p2 are 2 FILE* pointers Aug 11, 2014 at 17:22
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    @GiovanniFar: It's likely what you're doing doesn't even make sense; I don't know why you'd have two FILE*s open on the same file at the same time (if that's what you're doing). Aug 11, 2014 at 17:27
  • 4
    The question that you posted, and that several people have answered, has nothing to do with files. Please post a new question. (It would be unfair to edit this one after several people have gotten well-deserved upvotes for answering the question you actually asked rather than the one you meant to ask.) A "pointer" points to a location in memory. A location in a file is not a pointer; the C standard calls it a "file position indicator". Aug 11, 2014 at 17:57

2 Answers 2

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You could try with:

ptrdiff_t bytes = ((char *)p2) - ((char *)p1);

But this only works as expected if the pointers you subtract point to the same single piece of memory or within it. For example:

This will not work as expected:

char *p1 = malloc(3); // "ABC", piece 1
char *p2 = malloc(3); // "DEF", piece 2
char *p3 = malloc(3); // "GHI", piece 3

ptrdiff_t bytes = p3 - p1; // ABC ... DEF ... GHI
                           // ^               ^
                           // p1              p3
                           // Or:
                           // GHI ... ABC ... DEF
                           // ^       ^
                           // p1      p3

// Gives on my machine 32
printf("%td\n", bytes);

Because:

  • The malloc implementation could allocate some additional bytes for internal purposes (e.g. memory barrier). This would effect the outcome bytes.
  • It is not guaranteed that p1 < p2 < p3. So your result could be negative.

However this will work:

char *p1 = malloc(9);  // "ABCDEFGHI", one piece of memory
char *p2 = p1 + 3;     // this is within the same piece as above
char *p3 = p2 + 3;     // this too

ptrdiff_t bytes = p3 - p1; // ABC DEF GHI
                           // ^       ^
                           // p1      p3



// Gives the expected 6
printf("%td\n", bytes);

Because:

  • The allocated 9 Bytes will always be in one piece of memory. Therefore this will always be true: p1 < p2 < p3 and since the padding/additional bytes are on the start/end of the piece subtraction will work.
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  • 2
    Should be correct if both pointers point to same valid buffer, such as p1="foo"; p2=strchr(p1, 'x'); (with that diff is 3). Otherwise, Undefined Behavior.
    – hyde
    Aug 11, 2014 at 16:28
  • hyde's comment applys to any arithmetic operation involving two pointers.
    – alk
    Aug 11, 2014 at 16:37
  • @GiovanniFar Can I briefly see the code you are using?
    – marco-a
    Aug 11, 2014 at 17:37
  • im doing the compression and im in the begin (at the moment everything is in my mind) but i didnt write code lines. sooo i thought: if i can know the distance between 2 pointers (i think) i can write the compression in a easy way Aug 11, 2014 at 17:41
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Another way:

(p2-p1)*sizeof(*p1)

This works only when p1 and p2 point to memory locations that were allocated in one call to malloc family of functions.

This is valid:

int* p1 = malloc(sizeof(int)*20);
int* p2 = p1+10;

int  sizeInBytes = (p2-p1)*sizeof(*p1);

This is not valid:

int* p1 = malloc(sizeof(int)*20);
int* p2 = malloc(sizeof(int)*10);

int  sizeInBytes = (p2-p1)*sizeof(*p1); // Undefined behavior

Update, in response to comment by @chux

According to draft the C Standard (ISO/IEC 9899:201x):

6.5.6 Additive operators

...

9 When two pointers are subtracted, both shall point to elements of the same array object, or one past the last element of the array object; the result is the difference of the subscripts of the two array elements.

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  • :) It can also be (p2-p1)*sizeof(*p2)
    – shashank
    Aug 11, 2014 at 16:55
  • Downvote, p2 - p1 gives ((char *)p2 - (char *)p1) * sizeof(* p1) if both pointers are the same type.
    – marco-a
    Aug 11, 2014 at 17:17
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    @d3l, that is not true. p2-p1 is the number of elements of type *p1 between p1 and p2. Running code: ideone.com/zHI5aP
    – R Sahu
    Aug 11, 2014 at 17:26
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    @d3l, since my answer is not wrong, I hope you will remove the downvote.
    – R Sahu
    Aug 11, 2014 at 17:45
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    @chux, added an update. I couldn't find anything else more substantial. However, from a common sense point of view, if p1 and p2 are results of two calls to malloc, there is no way we can expect a predictable value of p2-p1.
    – R Sahu
    Aug 12, 2014 at 3:14

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