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I tried the following code in order to see how to get size of the data of a pointer:

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

 int main(){
  char *test_char_ptr = "This is just a test";
  int *test_int_ptr = (int *) malloc(16*sizeof(int));
  for(int i = 0; i<16; i++){
    test_int_ptr[i] = i;
  }
  printf("%s\n",test_char_ptr);
  printf("Test char 1: %d\n", (int)sizeof test_char_ptr );
  printf("Test char 2:%d\n", (int)sizeof *test_char_ptr );
  printf("Test char 3: %d\n", (int)((strlen(test_char_ptr)+1) * sizeof(char)));
  printf("Test int 1:%d\n", (int)sizeof test_int_ptr );
  printf("Test int 2:%d\n", (int)sizeof *test_int_ptr );
  return EXIT_SUCCESS;
 }

And code's output is(On 32 bit gcc 4.3):

This is just a test
Test char 1: 4
Test char 2:1
Test char 3: 20
Test int 1:4
Test int 2:4

I thought that sizeof(*test_char_ptr) would give me the sizeof the data inside of the *test_char_ptr. But instead it gave me 1 , which i think that is the sizeof char instead of the data. The same is for the test_int_ptr. Long story short, my question is how can i get the sizeof data inside a pointer or dynamically memory allocated array.

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Since your edit to change the strlen() line I think the output doesn't match anymore. –  Carl Norum Oct 15 '09 at 18:02
    
Ok I updated the output. –  systemsfault Oct 20 '09 at 10:48
    
possible duplicate of How to find the sizeof(a pointer pointing to an array) –  outis Mar 10 '12 at 16:23
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5 Answers

up vote 11 down vote accepted

That's not something you can do in C without maintaining the information yourself. You created the arrays, so you knew their sizes at one point, you just have to keep track of it on your own. You could create a data structure to help you, or just maintain the array and size information carefully without any data structure at all.

In addition, your code is using strlen() to get the size of the string - make sure you remember that the size returned will not include the terminating null character ('\0'); the in-memory size of a string constant is strlen(string) + 1.

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It was quick and dirty test code :D. So it is just a typo. –  systemsfault Oct 15 '09 at 7:28
    
You should be able to edit your post and clean it up then; I'll modify my answer appropriately if/when that happens. –  Carl Norum Oct 15 '09 at 7:29
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The pointer doesn't keep track of the number of objects that are allocated behind the (first) one it points to. That's because it can't: malloc() just returns the address of the first element, nothing else.

Therefor there's no way to find out the size of a dynamically allocated array. You have to keep track of it for yourself.

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sizeof only knows the full size of the array if that's statically known at compile time. For a pointer, it will return the size of the memory address, i.e. 4 on 32-bit, 8 on 64-bit.

When you use pointers, it's up to you to know and keep track of the size of the data it points to. The language implementation won't do it for you like it would for arrays.

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I believe you misinterpreted my statement, or I have not stated it clearly. sizeof(* p) may be 1, but sizeof(p) is the same as sizeof(void*) –  asveikau Oct 15 '09 at 7:37
    
@asveikau: I can now see that I have misinterpreted you. Sorry. –  sbi Oct 15 '09 at 8:01
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There is no standard way to do this. You have to keep the length of the allocated memory in another variable, or use a 'container' that keeps track for you.

Some platforms do have functions for finding the number of bytes in an allocation, e.g. Symbian as an AllocSize(ptr) function.

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A pointer only points to where the data begins. It doesn't know anything about the size of the data.

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