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Earlier, I asked a similar question, but I've since changed my code. Now the compiler gives me a different warning. This is an example of what my code looks like now:

void *a = NULL;
void *b = //something;
a = *(int *)((char *)b + 4);

When I try to compile, I get "warning: assignment makes pointer from integer without a cast." What does this mean, and what should I do to fix it?

To clarify, I don't want 'a' to point to an address that is 4 bytes greater than 'b' (i.e., a != b+4). In my program, I know that the value stored at ((char *)b + 4) is itself another pointer, and I want to store this pointer in 'a'.

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2 Answers 2

up vote 1 down vote accepted

Since, "the value stored at ((char *)b + 4) is itself another pointer", simply add an explicit cast to the result:

void *a = NULL;
void *b = //something;
a = (void*)*(int *)((char *)b + 4);

Since you're assuming that sizeof(void*)==sizeof(int), the code is not portable, but I am sure you already knew that.

A portable alternative is to use intptr_t instead of int.

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This (and the entire question) is undefined behaviour, though. –  Kerrek SB Oct 17 '11 at 9:44
    
@KerrekSB: No doubt about that. –  NPE Oct 17 '11 at 9:50
    
@KerrekSB: What do you mean? Which part of the question leads to undefined behavior? –  David Oct 17 '11 at 16:19
    
@David: Treating a random pointer as int* and dereferencing it does, i.e. the second asterisk on the third line of the answer. This is only OK if b was obtained by subtracting 4 bytes from an existing int*, but in general it's UB. –  Kerrek SB Oct 17 '11 at 16:20

So there's a pointer value stored at b+4 which you want to load into a? Then treat it as one, and so (b+4) points to a pointer - pointer to a pointer to int is int**.:

  *(int**)((char*)b+4) 
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