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Could be that I am overlooking something obvious, but where is pointer metadata stored? For instance if I have a 32-bit int pointer ptr and I execute ptr++ it knows to advance 4 bytes in memory. However, if I have a 64-bit int pointer it knows to advance 8 bytes. So who keeps track of what type of pointer ptr is and where is it stored? For simplicity you can limit this to C++.

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8  
Short answer: magic. Long answer, it need not be stored anywhere, because the compiler can do the requested pointer arithmetic at compile-time. –  Alok Singhal Feb 3 '10 at 6:08
    
Alok, you should post that as an answer. It is excellent. –  Max Shawabkeh Feb 3 '10 at 6:09
    
From the FAQ 'No question is too trivial or too "newbie".', so the [n00b] tag is unnecessary and in any case, misspelled. –  dmckee Feb 3 '10 at 6:14
    
Erm, I figured there was a reason this was the only n00b tag. I'm curious why you considered it misspelled however. –  bmalicoat Feb 3 '10 at 6:18
    
Aside from a few (and I do mean few) usernames, you won't find much leetspeak around here. The culture run rather more to conscientiously professional programmers and students who plan to be. –  dmckee Feb 3 '10 at 6:30

3 Answers 3

up vote 18 down vote accepted

It isn't stored anywhere, per-se. The compiler looks at the type of the ptr and turns the ++ operation into an increment of the correct number of bytes.

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Thanks. I didn't even consider that it could be computed at compile time. –  bmalicoat Feb 3 '10 at 6:16

In the symbol table while the compiler runs. Nowhere while your program runs, or rather it is implicit in the lower level code produced by the compiler.

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It's not stored anywhere, it's determined at compile time. In fact, take this code as an example:

int *abc = NULL;
cout << abc + 1; /* Prints sizeof(int) */
cout << (void *)((char *)abc + 1); /* Prints 1. Casting it back to void * is necessary,
           otherwise it will try to dereference it and print as a string. */
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