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So I have this existing bit of code that compiles perfectly in Visual Studio 2005, when the target platform is 32 bit. However, it does not work in 64 bit. I don't understand why; in fact I have never seen a pointer being cast to a long before. Is it even correct C++?

#define REAL double
typedef REAL* point; 
point *ptary; //(so it's basically double** ptary?)
long arylen = (long) ptary[0]; 

Thanks in advance.

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3  
Correct in terms of the language, but when people warn about casting it's precisely for reasons like this (among others), i.e., lack of portability. –  Chris A. Jul 12 '12 at 10:14
    
Note that long is 64-bit on 64-bit Linux and other platforms, so this is a common error to see when porting code to Windows. –  ecatmur Aug 9 '12 at 15:57

1 Answer 1

up vote 7 down vote accepted

It appears to work on the 32 bit system because pointers and longs are both 32 bits wide. It fails to work on the 64 bit system, because pointers are 64 bits wide, but longs are (probably) still only 32 bits wide.

You can easily check this by printing out sizeof(double*) and sizeof(long). My guess is that the output will be 8 and 4, respectively, on the 64 bit system.

If you need an integer type that is capable of holding a pointer, use intptr_t from <stdint.h>.

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Also note that converting pointers to integers (and vice versa) are implementation-defined operations. It may do what you expect for some compilers/implementations but not others. intptr_t and uintptr_t are optional types. –  dreamlax Jul 12 '12 at 10:27

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