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.

So, I have the following code, I know it is broken somewhere and I simply cannot identify where...

static uint64_t get_disk_total(const char* path)
{
    struct statvfs stfs;
    if ( statvfs(path, &stfs) == -1 )
    {
        return 0;
    }
    uint64_t t = stfs.f_blocks * stfs.f_bsize;
    std::cout  << "total for [" << path << "] is:" << t 
               << " block size (stfs.f_bsize):" <<   stfs.f_bsize
               << " block count (stfs.f_blocks):" << stfs.f_blocks 
               << " mul:" << stfs.f_blocks * stfs.f_bsize
               << " hardcoded: " << (uint64_t)(4096 * 4902319)     // line 50
               <<  std::endl ;
    return t;
}

When I compile it, tells me:

part_list.cpp: In function ‘uint64_t get_disk_total(const char*)’:
part_list.cpp:50:59: warning: integer overflow in expression [-Woverflow]

Good. And when I run it, the result is (line breaks added manually):

total for [/] is:2900029440 
block size (stfs.f_bsize):4096 
block count (stfs.f_blocks):4902319 
mul:2900029440 
hardcoded: 18446744072314613760

I know, that 4902319 * 4096 = 20079898624 ... google tells me it is. So how on earth do I get firstly 2900029440 and then 18446744072314613760 for the same calculation? Can someone please explain me what is happening here? It is above my comprehensive capabilities right now, and I feel, this is a tiny tiny issue somewhere hidden... 4902319 * 4096 should not be such a huge number for the application to go crazy like this...

Thank you for your help!

share|improve this question
5  
Try (uint64_t)(4096) * (uint64_t)(4902319). If you let your cast the way it is, it will cast your INT expression to an uint64_t result and not do a 64bits operation –  Turgal Mar 18 '13 at 10:08

2 Answers 2

up vote 6 down vote accepted

First you calculate (4096 * 4902319) which is calculated as int and it overflows. Then that number is converted to uint64_t.

Try:

(4096 *  (uint64_t) 4902319) 

To make it calculate as uint64_t.

share|improve this answer
1  
This explains it :) uint64_t t = (uint64_t)stfs.f_blocks * (uint64_t)stfs.f_bsize; is the correct way of solving the mistery ... Thanks! –  fritzone Mar 18 '13 at 10:11
    
This is an interesting change from C++03. In C++03, overflow in a contant expression makes the program ill-formed, and requires a diagnostic. (I wonder why this was converted to undefined behavior in C++11.) –  James Kanze Mar 18 '13 at 10:13

Use Unsigned long long literal :

   4096 * 4902319ULL
                 ~~~

Before the calculation overflows.

share|improve this answer

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.