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When I do the following, I get this error:

../src/Sample.cpp:19: error: cast from \u2018UINT8*\u2019 to \u2018UINT8\u2019 loses precision

#include <iostream>
using namespace std;

typedef unsigned char UINT8;
typedef unsigned int UINT32;

#define UNUSED(X) X=X

int main() {
    UINT8 * a = new UINT8[34];
    UINT32 b = reinterpret_cast<UINT8>(a);

    UNUSED(b);

    return 0;
}

How would I go about solving this. Keep in mind I am not trying to convert string to unsigned long, rather converting char* (the ADDRESS value ) to int.

Thanks

Solution:

Turns out that this problem has to do with the pointer size. On a 32 bit machine, the pointer size is 32 bit, and for 64 bit machine is of course 64. The above wont work on a 64 bit machine, but will on a 32 bit machine. This will work on a 64 bit machine.

#include <iostream>
#include <stdint.h>

using namespace std;

typedef  uint8_t UINT8;
typedef int64_t UINT32;

#define UNUSED(X) X=X

int main() {
    UINT8 * a = new UINT8[34];
    UINT32 b = reinterpret_cast<UINT32>(a);
    UNUSED(b);

    return 0;
}
share|improve this question
    
Are you compiling for a 32-bit architecture? –  Rowland Shaw Apr 17 '12 at 14:59
    
Remember, you are trying to store 34 bytes of data into 4 bytes. The error says it all. –  karlphillip Apr 17 '12 at 15:01
    
@Rowland Shaw, no its a 64 bit Yeah just realized that thanks the code is causing issue because it was originally using 32 bit compiler. –  Anonymous Apr 17 '12 at 15:13
1  
@Anonymous: If your compiler supports it, you should use the standard integer types from <cstdint> or <stdint.h>. In particular, std::uintptr_t is guaranteed to be large enough to store a pointer value. And even on a 32-bit platform, casting to <UINT8> won't work. –  Mike Seymour Apr 17 '12 at 15:33
    
@Mike Seymour I agree, I switched to 32 bit compilation. That how I was to suppose to compile the whole time. –  Anonymous Apr 17 '12 at 15:35

3 Answers 3

up vote 2 down vote accepted

Assuming that sizeof(int) == sizeof(void*) you can use this code to convert:

int b = *reinterpret_cast<int*>(&a);

or variations thereof. I think static_cast will work too.

Of course a has to be l-value (able to be assigned to) to get the address of it. For non-l-values, you need to use a function and the good old union trick will work:

int Pointer2Int (void* p)
{
    union { void* p; int i; } converter;
    converter.p = p;
    return converter.i;
}
share|improve this answer
    
Excellent Idea for conversion, but issue is using a 32 bit program, and trying to compile with a 64 bit compilation. The above code doesn't work cause the int is 32, and the pointer is 64. But +1 the union idea. –  Anonymous Apr 17 '12 at 15:15
    
Thanks, and that's why I said assuming sizeof(int) == sizeof(void*). So your code needs to use long long, _int64 or just long depending on your compiler. C/C++ type system is not the best really. –  Cthutu Apr 17 '12 at 15:17
    
I switched my compilation to 32 bits, and now it works. Thanks. –  Anonymous Apr 17 '12 at 15:26
    
I'm pretty sure using reinterpret_cast here is undefined behavior. Reading unsigned char* as unsigned int breaks strict aliasing. –  Timo Apr 17 '12 at 15:30
    
@Timo No it works as long as you are certain that the pointer size is the same as the unsigned int –  Anonymous Apr 17 '12 at 19:54

This isn't a good idea, but the line should read:

UINT32 b = reinterpret_cast<UINT32>(a);

reinterpret_cast takes the type of the destination type as the template parameter.

With the correct type g++ will tell you that it isn't a good idea:

error: invalid cast from type ‘char’ to type ‘int’

see Cthutu's answer for a more correct approach.

share|improve this answer
    
Actually as I mentioned in the question, that is not the issue. The issue that the compiler complains in loss of precision. I just figured out I am trying to compile for a 64 bit system. This means the pointer size is 64 bits as oppose to the 32 bit. This will not work unless I use a 64 bit integer. –  Anonymous Apr 17 '12 at 15:11
    
That's why I said assuming sizeof(int) == sizeof(void*). But of course if sizeof(int) < sizeof(void*) you don't want to be making this cast :) –  Cthutu Apr 17 '12 at 15:12

An option would be to :

int *a; char b[64]; int c;

a = (int*) malloc (sizeof(int));

sprintf(b, "%d", a);

c = atoi(b);

share|improve this answer
    
@ Skippy Thanks, but as I mention in the question, "Keep in mind I am not trying to convert string to unsigned long, rather converting char* (the ADDRESS value ) to int." –  Anonymous Apr 17 '12 at 15:16
    
then I meant %x instead of %d. Sorry. –  Skippy Fastol Apr 18 '12 at 8:19

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