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So I have a really large pointer, p, pointing to roughly 40 bytes.

I also know that these 40 bytes enclose ints, chars, and other pointers. I know how to hop across these 40 bytes too.

For debug purposes I want to print out these contents. How do I do that?

For example, lets say I know that at p+16 there is an int and I want to print this int. Is there a way to "print 4 bytes from this address and format that as an int" in C?

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2 Answers 2

up vote 4 down vote accepted

Yes, just cast & dereference. Assuming you have p already set up:

int i = *(int *)(p + 16);
printf("%d\n", i);

Watch out for potential alignment issues - for example, this code:

int i = *(int *)(p + 3);

might cause an exception on some processors (assuming p is safely aligned for an int, that is). In that case, you'll need to assemble the bytes yourself. Here's an example assuming a 4-byte integer and 8-bit bytes. Make sure to watch out for endianness:

unsigned char *p;
int bigEndian = p[3] << 24 + p[4] << 16 + p[5] << 8 + p[6];
int littleEndian = p[3] + p[4] << 8 + p[5] << 16 + p[6] << 24;
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Thanks! This works! –  nthacker Sep 30 '12 at 6:12

You could do something like this:

printf ("%d", *(int*)(p+16));

A better approach might be to make a struct of the structure you're trying to print, if it's something that can be expressed as such. Something like:

typedef struct someStruct {
    int field1;
    float field2;
    char field3[8];
    int field4;
} someStruct;

Then you can just do something like this:

struct someStruct *p = (struct someStruct*)ptr;
printf ("%d", p->field4);
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You will need to consider structure padding. The compiler is free to pop additional bytes in a structure to improve performance. –  EvilTeach Sep 30 '12 at 2:52
Good point. You may need to add a compiler directive to tell it to pack the bytes of the structure, for example. –  user1118321 Sep 30 '12 at 4:26

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