Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Even after casting a void pointer, I am getting compilation error while dereferencing it. Could anyone please let me know the reason of this.

int lVNum = 2;
void *lVptr;
lVptr = (int*)&lVNum;

printf("\nlVptr[60 ] is  %d \n",lVptr[1]);
share|improve this question
    
You can't dereference a void pointer. What's the actual compilation error? –  MatthewD Mar 18 '13 at 1:29
8  
In four lines of code we have (a) an unnecessary cast, (b) an illegal dereference of an untyped pointer, and (c) out-of-bounds undefined-behaviour. That may be a new record. –  WhozCraig Mar 18 '13 at 1:30
    
What compiler errors do you get? It's difficult to tell you the reason for errors without the actual errors themselves. –  Code-Apprentice Mar 18 '13 at 1:31
    
@Code-Guru: In general, yes. Here, not so much. –  Ed S. Mar 18 '13 at 1:32
    
What do you expect lVptr[1] to return? –  tjameson Mar 18 '13 at 1:36

7 Answers 7

up vote 4 down vote accepted

printf("\nlVptr[60 ] is %d \n", *(int*)lVptr);

This will cast the void pointer to a pointer to an int and then dereference it correctly.

If you want to treat it as an array (of one), you could do a slightly ugly ((int *)lVptr)[0]. Using [1] is out of bounds, and therefore not a good idea (as for lVptr[60]...)

share|improve this answer

It doesn't make sense to dereference a void pointer. How will the compiler interpret the memory that the pointer is pointing to? You need to cast the pointer to a proper type first:

int x = *(int*)lVptr;
share|improve this answer

It's still a void* because that's what you declared it as. Any pointer may be implicitly converted to a void*, so that cast does nothing and you are left with a pointer to void just as you began with.

You'll need to declare it as an int*.

void *some_ptr = /* whatever */;
int *p = (int*)some_ptr;
// now you have a pointer to int cast from a pointer to void

Note that the cast to an int* is also unnecessary, for the same reason you don't have to (and should not) cast the return value of malloc in C.

void*'s can be implicitly converted to and from any other pointer type. I added the cast here only for clarity, in your code you would simply write;

int *p = some_void_ptr;

Also, this:

lVptr[1]

Is wrong. You have a pointer to a single int, not two. That dereference causes undefined behavior.

share|improve this answer
    
+1 the only thing left in this is the cast, which in C isn't needed. Other than that, this addresses it all. –  WhozCraig Mar 18 '13 at 1:35
    
@WhozCraig: Yeah, I just wanted it to be as clear as possible. I suppose I should mention it though; it may prevent silly malloc casts in the future. –  Ed S. Mar 18 '13 at 1:36
    
yeah. "// cast not needed (or recommended), but amplifies what you're doing." Still got the up-vote =P –  WhozCraig Mar 18 '13 at 1:38

You can not dereferencing a void pointer because it doesn't have type, first need to cast it and then dereferencing *(int *)lVptr

int lVNum = 2;
void *lVptr;
lVptr = &lVNum;

printf("\nlVptr[60 ] is  %d \n",*(int *)lVptr);
share|improve this answer

A void pointer is just that, a pointer to a void (nothing definable).

Useful in some instances. For example malloc() returns a void pointer precisely because it allocated memory for an UNDEFINED purpose. Some functions may likewise take void pointers as arguments because they don't care about the actual content other than a location.

To be honest, the snippet you posted makes absolutely no sense, can't even guess what you were trying to do.

share|improve this answer

Example of what you might be trying to do:

#include <stdio.h>

int main () {
    void *v;
    unsigned long int *i = (unsigned long int *)v;

    *i = 5933016743776703571;

    size_t j = sizeof(i);
    printf("There are %ld bytes in v\n", j);

    size_t k;
    for (k = 0; k < j; k++) {
        printf("Byte %ld of v: %c\n", k, ((char *)v)[k]);
    }
}

Output:

There are 8 bytes in v
Byte 0 of v: S
Byte 1 of v: T
Byte 2 of v: A
Byte 3 of v: C
Byte 4 of v: K
Byte 5 of v: O
Byte 6 of v: V
Byte 7 of v: R
share|improve this answer

@ Code-Guru I tried to compile it in visual studio. It gives error - expression must be a pointer to complete object.

Thanks teppic, As you suggested, the following compiles and yields right result.

#include<stdio.h>

void main(){

printf("study void pointers \n");

int lvnum = 2;
void *lvptr;
lvptr = &lvnum;
printf("\n lvptr is %d\n",((int *)lvptr)[0]);


}

However if I try printf("\n lvptr is %d\n",((int *)lVptr)[60]); It compiles and runs but gives random number.

Thanks a lot, friends for all the suggestions. Apologies that I assigned a void pointer to unnecessarily casted int pointer and expected it to get dereferenced. However I should have casted it when I want to dereference it.

Purpose of the snippet: In my sources I found klocwork error which was caused by similar situation. On the contrary the program not only compiled but also gave correct results. Reason- it is a low level code (no OS) where the memory assigned to the void pointer is already reserved till the count of like 60. But the klocwork tool was unable to parse the files having that limit resulting in error. I did a lot of brain storming and ended up in something silly.

Saurabh

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.