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I'm trying to write a function that takes a void pointer to an int and then doubles the int, and puts it back into the memory location:

void doubleNumber(void *number){
    number = &((*((int*)(number))) * 2);

} 

So first I cast it into an int * from a void *, then I deference the int * to get the value, then I multiply by 2 and then I get the address of that to put it back into the pointer.

Can anyone give me tips on why my logic is not working?

Thanks

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4 Answers 4

up vote 4 down vote accepted

I'd write it like this:

void doubleNumber(void *number){
    *(int*)number *= 2;
}

First of all cast number to be of type int*. Then dereference the pointer. Then double it.

The problem with your code is that you are assigning the pointer rather than the pointee.

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This works perfectly. What was wrong with the code I had? –  Kevin Oct 17 '11 at 21:54
1  
Well, you were assigning to the pointer rather than the pointee. I think that's pretty much it. –  David Heffernan Oct 17 '11 at 21:55

Step 1:

void doubleNumber(int *value) {
    *value = 2 * (*value);
}

Step 2:

void doubleNumber(void *value) {
    int * ivalue = (int *)value;
    *ivalue = 2 * (*ivalue);
}
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Firstly, arguments to functions in C are passed by value, so modification of number will have no effect.

Secondly, even if it did, you should allocate some memory for the value first. Only then can you return a pointer to this place in memory.

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A value (such as 2) has no address.

Instead, simply write:

* (*int)number = *(int*) number) * 2;

or, shorter:

* (*int)number *= 2;
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You don't need to remember all of C's precedence rules, but one simple rule that's worth remembering is that the unary operators all have higher precedence than anything except the function call, array subscript and structure member access operators. So *(int *)number will do the right thing. –  caf Oct 17 '11 at 23:57
    
@caf Thanks, simplified. –  phihag Oct 18 '11 at 0:06

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