Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am trying to force 64 bit long integers on OS X 10.5.6. running on an Apple MacBook Intel Core 2 Duo. Here is my c code:

#include<stdio.h>

int main()
{
    long a = 2147483647; /*== 2^32 - 1*/
    long aplus1;

    printf("a== %d. sizeof(a) == %d  \n", a, sizeof(a));

    aplus1 = a+1;

    printf("aplus1 = %d \n", aplus1);
}

Compiling without any switches yields the following:

$ gcc testlong.c -o testlong ;./testlong

a== 2147483647. sizeof(a) == 4  
aplus1 = -2147483648

Compiling with the -m64 switch yields:

$ gcc testlong.c -o testlong -m64; ./testlong

a== 2147483647. sizeof(a) == 8  
aplus1 = -2147483648

So the second version is apparently using 64 bit storage, but still generates the overflow error, although 2^32 should be well within the range of a 64 bit integer. Any ideas?

I would prefer a solution that can be forced from a gcc option rather than requiring me to change multiple lines of source code (my actual problem is not the above example specifically, rather I need to force long integer arithmetic in a more general situation).

share|improve this question
add comment

5 Answers

Not only do you have to use long long, but you must also change the printf() statements accordingly.

#include<stdio.h>

int main()
{
    long long a = 2147483647; /*== 2^32 - 1*/
    long long aplus1;

    printf("a== %lld. sizeof(a) == %d  \n", a, sizeof(a));

    aplus1 = a+1;

    printf("aplus1 = %lld \n", aplus1);
}

%lld is the code for long longs.

Apparently true 64-bit programs can use %d for 64-bit integers - I don't know if it's possible to configure it to compile in this mode.

share|improve this answer
1  
Indeed, the printf format specification is the problem. If OP's system has 32-bit ints and 64-bit longs, long long isn't necessary -- just changing the format to "%ld" should be sufficient. –  ephemient Apr 28 '09 at 21:39
    
Ok yes, ephemient is exactly right. It seems the problem in my original code was in the printf statement - changing to %ld fixes the problem without needing "long long"s, provided I compile with the -m64 switch. Thanks! –  seandbarrett Apr 28 '09 at 21:49
5  
Mac OS X 64-bit follows the LP64 model, which is (int=32,long=longlong=pointer=64); this is the most common 64-bit model. Win64 uses LLP64(int=long=32,longlong=pointer=64). ICC accepts -DMKL_ILP64 to follow the ILP64 model (int=long=longlong=pointer=64), and GCC has -mint64 for the same, but it's not available on most platforms and breaks compatibility with other libraries and system APIs. –  ephemient Apr 28 '09 at 21:54
add comment

If you are using C99, include stdint.h and use uint64_t and int64_t. Other than that, unsigned long long a = 0x100000000ull; should work too.

share|improve this answer
    
I second this. And to print you could use the 'PRI' macros defined in stdint.h printf("a = %"PRIu64"\n"); –  joveha Apr 29 '09 at 21:19
add comment

Use the C99 standard:

#include <stdint.h>

uint64_t a = 2147483647ULL;

There's an excellent C99 library overview at Dinkumware.

share|improve this answer
add comment

Have you tried:

long long a = 2147483647;
share|improve this answer
    
Thanks for the prompt response! However that doesn't seem to work, either with or without the -m64 switch. –  seandbarrett Apr 28 '09 at 21:32
add comment

The literal 2147483647 in C code is of type int. If you want it to be a long, it doesn't help to have a long on the left-hand side, it's still an int on the right.

Make it a long literal, by appending a 'L': 2147483647L (upper-case is recommended, lower-case 'l' works too but can be very confusing depending on the font).

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.