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If I create a void pointer, and malloc a section of memory to that void pointer, how can I print out the individual bits that I just allocated?

For example:

void * p;
p = malloc(24);
printf("0x%x\n", (int *)p);

I would like the above to print the 24 bits that I just allocated.

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3  
You allocated 24 bytes, actually. (Strictly speaking, you allocated space to hold 24 characters.) –  David Schwartz Feb 1 '13 at 22:50

6 Answers 6

up vote 3 down vote accepted
size_t size = 24;
void *p = malloc(size);

for (int i = 0; i < size; i++) {
  printf("%02x", ((unsigned char *) p) [i]);
}

Of course it invokes undefined behavior (the value of an object allocated by malloc has an indeterminate value).

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+1, but perhaps you could leave out that comment on undefined behavior. It's already implicit in the question. The OP wants to know what the memory looks like right after malloc. –  s.bandara Feb 1 '13 at 22:53
2  
@s.bandara Why is it implicit? OP doesn't seem to even know about it. –  user529758 Feb 1 '13 at 22:54
    
@s.bandara I need it otherwise somebody will downvote this answer because it invokes undefined behavior ;) –  ouah Feb 1 '13 at 22:55
    
That's what I thought, it looks like a CYA sentence, and I think it should go away. @H2CO3, if the goal is to inspect the memory allocated by malloc it is not even undefined behavior in that sense. Rather, the result will be undetermined, but so is the behavior of scanf, for example. –  s.bandara Feb 1 '13 at 22:57
1  
@MichaelBurr strictly speaking reading an indeterminate value is always UB (so even if you read an unsigned char object and we know unsigned char objecst do not have trap representations). See DR#338 http:// open-std.org/jtc1/sc22/wg14/www/docs/dr_338.htm –  ouah Feb 2 '13 at 1:36

You can't - reading those bytes before initializing their contents leads to undefined behavior. If you really insist on doing this, however, try this:

void *buf = malloc(24);
unsigned char *ptr = buf;
for (int i = 0; i < 24; i++) {
    printf("%02x ", (int)ptr[i]);
}

free(buf);
printf("\n");
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void print_memory(void *ptr, int size)
{ // Print 'size' bytes starting from 'ptr'
    unsigned char *c = (unsigned char *)ptr;
    int i = 0;

    while(i != size)
        printf("%02x ", c[i++]);           
}

As H2CO3 mentioned, using uninitialized data results in undefined behavior, but the above snipped should do what want. Call:

print_memory(p, 24);
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1  
Without incrementing i, that wont ever return. –  Gary Feb 1 '13 at 22:55
    
Sorry, alt-tabbed to do work mid-stream. Fixed ;) –  Nik Bougalis Feb 1 '13 at 22:56

void* p = malloc(24); allocates 24 bytes and stores the address of first byte in p. If you try to print the value of p, you'll be actually printing the address. To print the value your pointer points to, you need to dereference it by using *. Also try to avoid void pointers if possible:

unsigned char *p = malloc(24);
// store something to the memory where p points to...
for(int i = 0; i < 24; ++i)
    printf("%02X", *(p + i));

And don't forget to free the memory that has been allocated by malloc :)

This question could help you too: What does "dereferencing" a pointer mean?

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malloc allocates in bytes and not in bits. And whatever it is, your printf is trying to print an address in the memory.

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The malloc allocates bytes.

 for (i = 0; i < 24; ++i) printf("%02xh ", p[i]);

would print the 24 bytes. But if cast to an int, you'll need to adjust the loop:

 for (i = 0; i < 24; i += sizeof(int)) printf("%xh", *(int *)&p[i]);

But then, if you know you want an int, why not just declare it as an int?

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Are you sure you understand pointer arithmetic? –  user529758 Feb 1 '13 at 22:54
    
I'll admit that no, I do not understand pointer arithmetic. I need to use a void pointer due to the specifications of a larger assignment. –  kubiej21 Feb 1 '13 at 22:55
    
@kubiej21 I was directing this one to the author of this answer. –  user529758 Feb 1 '13 at 22:56
    
Ok, so a typo gets a snide remark? Are you sure you understand interacting with humans? –  Gary Feb 5 '13 at 12:20

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