cannot assign a value to 64-bit integer on 32-bit platform

After switching from 64-bit to 32-bit platform (both of them are CentOS) I get inte开发者_开发问答ger constant is too large for ‘long’ type error for the following line of code

uint64_t Key = 0x100000000;

Casting the value does not help. What am I doing wrong?

Thanks

You need to make the integer constant of the right type. The problem is that 0x100000000 is interpreted as an int, and casting / assignment doesn't help: the constant itself is too big for an int. You need to be able to specify that the constant is of uint64_t type:

uint64_t Key = UINT64_C(0x100000000);

will do it. If you don't have UINT64_C available, try:

uint64_t Key = 0x100000000ULL;

In fact, in C99 (6.4.4.1p5):

The type of an integer constant is the first of the corresponding list in which its value can be represented.

and the list for hexadecimal constants without any suffix is:

int
long int unsigned int
long int
unsigned long int
long long int
unsigned long long int

So if you invoked your compiler in C99 mode, you should not get a warning (thanks Giles!).

What you've written is perfectly valid C99 (assuming you've #included <stdint.h>)¹. So it looks like you've invoked your compiler in C89 mode rather than C99 mode. In C89, there is no guarantee that a 64-bit type is available, but it's a common extension.

Since you're on Linux, your compiler is presumably gcc. Gcc supports a 64-bit long long on all platforms, even in C89 mode. But you may have to explicitly declare the constant as long long:

uint64_t Key = 0x100000000ull;

(ll means long long; u means unsigned and is optional here). Alternatively, you may want to run gcc in C99 mode with gcc -std=c99.

¹ _{for the language lawyers: and have an integral type with exactly 64 value bits.}

No guarantee, but you might try:

uint64_t Key = 0x100000000ULL;