58

Is there a function that returns how much space is free on a drive partition given a directory path?

4 Answers 4

100

check man statvfs(2)

I believe you can calculate 'free space' as f_bsize * f_bfree.

NAME
       statvfs, fstatvfs - get file system statistics

SYNOPSIS
       #include <sys/statvfs.h>

       int statvfs(const char *path, struct statvfs *buf);
       int fstatvfs(int fd, struct statvfs *buf);

DESCRIPTION
       The function statvfs() returns information about a mounted file system.
       path is the pathname of any file within the mounted file  system.   buf
       is a pointer to a statvfs structure defined approximately as follows:

           struct statvfs {
               unsigned long  f_bsize;    /* file system block size */
               unsigned long  f_frsize;   /* fragment size */
               fsblkcnt_t     f_blocks;   /* size of fs in f_frsize units */
               fsblkcnt_t     f_bfree;    /* # free blocks */
               fsblkcnt_t     f_bavail;   /* # free blocks for unprivileged users */
               fsfilcnt_t     f_files;    /* # inodes */
               fsfilcnt_t     f_ffree;    /* # free inodes */
               fsfilcnt_t     f_favail;   /* # free inodes for unprivileged users */
               unsigned long  f_fsid;     /* file system ID */
               unsigned long  f_flag;     /* mount flags */
               unsigned long  f_namemax;  /* maximum filename length */
           };
6
  • 2
    That looks like exactly what I need. Cheers!
    – hookenz
    Oct 21, 2010 at 22:05
  • 7
    statvfs does not seem to work for vfat mounted drives. I tried it with a FAT 32 partition and its gives 0 for available blocks. Is there a way to work it out? Oct 31, 2013 at 9:49
  • 2
    @ShadmanAnwer unfortunately the man page says: It is unspecified whether all members of the returned struct have meaningful values on all file systems. So perhaps FAT32 is not supported in this case. Oct 31, 2013 at 15:52
  • 11
    Use f_bsize * f_bavail to have data consistent to df -h command.
    – speed488
    Sep 26, 2017 at 17:08
  • 4
    The difference between f_bfree and f_bavail is due to blocks reserved for the super user (ext2/3/4 file systems). This defaults to 5% of the disk. It can be altered using tune2fs with options -r <count> or -m <percentage>. It can also be set during file system creation.
    – zoke
    Jun 14, 2018 at 4:55
37

You can use boost::filesystem:

struct space_info  // returned by space function
{
    uintmax_t capacity;
    uintmax_t free; 
    uintmax_t available; // free space available to a non-privileged process
};

space_info   space(const path& p);
space_info   space(const path& p, system::error_code& ec);

Example:

#include <boost/filesystem.hpp>
using namespace boost::filesystem;
space_info si = space(".");
cout << si.available << endl;

Returns: An object of type space_info. The value of the space_info object is determined as if by using POSIX statvfs() to obtain a POSIX struct statvfs, and then multiplying its f_blocks, f_bfree, and f_bavail members by its f_frsize member, and assigning the results to the capacity, free, and available members respectively. Any members for which the value cannot be determined shall be set to -1.

0
19

With C++17

You can use std::filesystem::space:

#include <iostream>  // only needed for screen output

#include <filesystem>
namespace fs = std::filesystem;

int main()
{
    fs::space_info tmp = fs::space("/tmp");

    std::cout << "Free space: " << tmp.free << '\n'
              << "Available space: " << tmp.available << '\n';
}
1
  • This may require a linker addition in your Makefile. I needed -lstdc++fs. See notes here
    – WesH
    Aug 11, 2020 at 21:51
-3

One can get the output of a command into a program by using a pipe like this:

char cmd[]="df -h /path/to/directory" ;
FILE* apipe = popen(cmd, "r");
// if the popen succeeds read the commands output into the program with 
while (  fgets( line, 132 , apipe) )
{  // handle the readed lines
} 
pclose(apipe);
// -----------------------------------
1
  • 2
    Opening commands spawns new processes, which can be 500x - 2000x slower than that of a C API call. Ultimately the program you are spawning may also be written in C, and you are doing a lot of unnecessary work.
    – S.Goswami
    May 29, 2021 at 20:07

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