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At work, I've been trying to get a new version of Red Hat Linux installed on a computer, and more importantly, to run a custom bit of code. When I made this upgrade, I noticed the following error:

cast from 'void*' to 'int' loses precision

In addtion, I've been noticing a string of other errors based from a library which forces use to 32 bit addresses. They seem to result from essentially type casting an in to a custom library 32 bit value.

Bottom line is this. I believe that the compiler has changed the default size of an int from 32 bit to 64 bit. I'm trying to figure out if this is the case without writing a trivial program to determine the size of the integer. In addition, is there a way to force the size back to 32 bits, at least as a proof of concept?

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5  
"I'm trying to figure out if this is the case without writing a trivial program to determine the size of the integer." I respectfully suggest that you write a trivial program to determine the size of an integer (and a void* for that matter.) –  Robᵩ Jul 10 '12 at 16:39

3 Answers 3

up vote 2 down vote accepted

If you're on an x86_64 box, int is still 4 bytes. if it was 8, the compiler would not tell you

cast from 'void*' to 'int' loses precision

because there would be no precision to lose. what it's telling you that your trying to cram an 8byte pointer to a 4byte int, that's quite obviously going to lose a bit of information.

also, and this is just a sidenote, how hard can it be to write this?

#include <ostream>
#include <iostream>

#define sz(t) std::cout << sizeof(t) << '\n'
int
main(void)
{
  sz(char);
  sz(int);
  sz(long);
  sz(void*);
  return 0;
}
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Use the -m32 gcc switch.

Try compiling this:

#include <stdio.h>
int main(){
    long z;
    printf("size is %ld\n", sizeof(z));
    return 0;
}

With -m32 you should get 4, with -m64 you should get 8.

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1  
but his compiler complains about void* to int conversion, not void* to long. i think it's safe to assume that he's on an x86_64 machine, int is 32bit, void*, begin a pointer, 64bit. –  just somebody Jul 10 '12 at 16:45
    
@justsomebody: I'm just answering his question on how to force the compiler to compile in 32-bit mode. And I used long in the example because this way he can easily confirm what his compiler uses as default -- long on a 64-bit machine will be 8. –  houbysoft Jul 10 '12 at 16:52
    
sizeof(long) == 8 on a number of 32-bit machines as well... –  Chris Dodd Jul 10 '12 at 17:32
    
@ChrisDodd: ideone.com/UymsS. I also tested on my 64-bit machine using -m32 and it gave 4 as well. –  houbysoft Jul 10 '12 at 18:53

After much toil, I was able to figure out the following.

  1. My previous code was needing to get a 32 bit custom integer from a pointer in memory, due to a trick of addressing spaces. Bottom line is, the compiler in Redhat 4 allowed it, but not in Redhat 5. The solution was to convert it first to a 64 bit standart integer, then to a 32 bit , like this (int32)(int64)some_pointer_value. I couldn't find a better solution, but this seemed to work.
  2. There was a few switch statements with long cases. The new compiler didn't seem to like that. A quick rearranging of code seemed to fix it.
  3. The intptr_t trick worked quite well.
  4. There was a few class functions that were declared like class_name::function1(){...}. I think I must have picked up that habit from anther programming language. The class_name:: had to go, but once it did, the code compiled.

Once I did all of these things, then the code compiled. Furthermore, it worked just the same in Redhat 4. Whew!

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