92

I have a list of files stored in a .log in this syntax:

c:\foto\foto2003\shadow.gif
D:\etc\mom.jpg

I want to extract the name and the extension from this files. Can you give a example of a simple way to do this?

9 Answers 9

207

To extract a filename without extension, use boost::filesystem::path::stem instead of ugly std::string::find_last_of(".")

boost::filesystem::path p("c:/dir/dir/file.ext");
std::cout << "filename and extension : " << p.filename() << std::endl; // file.ext
std::cout << "filename only          : " << p.stem() << std::endl;     // file
7
  • Agreed. Answers the question most succinctly.
    – AndyUK
    May 28, 2014 at 12:43
  • 14
    Actually, p.filename() is of type path, and will be surrounded by quotes when implicitly converted, so you will get: filename and extension: "file.ext" You may want p.filename().string() instead. Feb 18, 2016 at 19:54
  • 9
    With C++14/C++17 you can use std::experimental::filesystem resp std::filesystem. See post from Yuchen Zhong below.
    – Roi Danton
    Apr 12, 2017 at 14:15
  • 4
    The asker wanted a simple way. Adding boost to a project for this functionality alone is not a simple way. std::filesystem is the simple way.
    – KKlouzal
    Nov 30, 2019 at 13:26
  • 3
    C++17 included <filesystem> into the standard library. Use fresh compiler... or import boost. Dec 2, 2019 at 16:29
49

For C++17:

#include <filesystem>

std::filesystem::path p("c:/dir/dir/file.ext");
std::cout << "filename and extension: " << p.filename() << std::endl; // "file.ext"
std::cout << "filename only: " << p.stem() << std::endl;              // "file"

Reference about filesystem: http://en.cppreference.com/w/cpp/filesystem


As suggested by @RoiDanto, for the output formatting, std::out may surround the output with quotations, e.g.:

filename and extension: "file.ext"

You can convert std::filesystem::path to std::string by p.filename().string() if that's what you need, e.g.:

filename and extension: file.ext
3
  • Hey @RoiDanton, thanks for the edit! I just checked the example code in the reference link again, it doesn't seem that it is necessary to convert the return type from std::filesystem::path to std::string in order to be able to use std::cout. en.cppreference.com/w/cpp/filesystem/path/filename But if you think otherwise, feel free to comment or edit the post again.
    – Yuchen
    Apr 12, 2017 at 14:39
  • Thats true, std::cout can rely on implicit conversion. However since the comments after std::cout say file.ext and file, either .string() has to be added to the comments or they should be "file.ext" and "file". With Visual C++ there is indeed no difference (even without string() the output is without quotation marks), but with gcc 6.1 the output is with quotation marks if .string() is omitted. See coliru.stacked-crooked.com/view?id=a55ea60bbd36a8a3
    – Roi Danton
    Apr 12, 2017 at 14:56
  • @RoiDanton, hey, that's interesting insight. I will update the post again. Thanks for sharing this!
    – Yuchen
    Apr 12, 2017 at 15:21
19

If you want a safe way (i.e. portable between platforms and not putting assumptions on the path), I'd recommend to use boost::filesystem.

It would look somehow like this:

boost::filesystem::path my_path( filename );

Then you can extract various data from this path. Here's the documentation of path object.


BTW: Also remember that in order to use path like

c:\foto\foto2003\shadow.gif

you need to escape the \ in a string literal:

const char* filename = "c:\\foto\\foto2003\\shadow.gif";

Or use / instead:

const char* filename = "c:/foto/foto2003/shadow.gif";

This only applies to specifying literal strings in "" quotes, the problem doesn't exist when you load paths from a file.

2
  • 2
    +1 Definately the way to go. The example on the main site gives a way to search a directory: Use path.extension() method to search for logs (see boost.org/doc/libs/1_36_0/libs/filesystem/doc/index.htm)
    – Tom
    Dec 13, 2010 at 16:18
  • Indeed this is in most cases the way to go however it involves adding in some cases an undesirable dependency on an external library. If you want to work only what the C++ standard provides I suggest looking at the C++ regex, where you can define a regular expression to do what you want to (plenty of examples on the internet). The advantage - no overhead due to some additional dependencies. However this also leave one question open - is multiplatforming required? Boost takes care of the path-style no matter if you are using Windows or Linux. Using regex you have to do that on your own. Jul 11, 2014 at 20:13
18

You'll have to read your filenames from the file in std::string. You can use the string extraction operator of std::ostream. Once you have your filename in a std::string, you can use the std::string::find_last_of method to find the last separator.

Something like this:

std::ifstream input("file.log");
while (input)
{
    std::string path;
    input >> path;

    size_t sep = path.find_last_of("\\/");
    if (sep != std::string::npos)
        path = path.substr(sep + 1, path.size() - sep - 1);

    size_t dot = path.find_last_of(".");
    if (dot != std::string::npos)
    {
        std::string name = path.substr(0, dot);
        std::string ext  = path.substr(dot, path.size() - dot);
    }
    else
    {
        std::string name = path;
        std::string ext  = "";
    }
}
1
  • 2
    Don't wanna be smart ass but it should be path.substr and not path.substring, right?
    – Björn
    Feb 23, 2012 at 9:10
4

Not the code, but here is the idea:

  1. Read a std::string from the input stream (std::ifstream), each instance read will be the full path
  2. Do a find_last_of on the string for the \
  3. Extract a substring from this position to the end, this will now give you the file name
  4. Do a find_last_of for ., and a substring either side will give you name + extension.
6
  • And -1 for being non-portable :)
    – Kos
    Dec 13, 2010 at 16:12
  • Why the down vote? If there is anything wrong with what I said, let me know and I'll fix!
    – Nim
    Dec 13, 2010 at 16:13
  • 2
    @Kos, well that's harsh! it matches what the OP wants, the file is windows based, and there was no portability requirement!
    – Nim
    Dec 13, 2010 at 16:14
  • At the very least, a valid Windows path can have the directories separated by / as well. And I don't even know whether there exist more caveats in path specifications, so my thinking is simple - if there's a good library which does what I want, I should use it, because it will achieve my goal probably better than i can. ;)
    – Kos
    Dec 13, 2010 at 16:17
  • 3
    @Nim, but isn't there a boost::insects::disperser<T> generic template for that? :)
    – Kos
    Dec 13, 2010 at 17:28
1

The following trick to extract the file name from a file path with no extension in c++ (no external libraries required):

#include <iostream>
#include <string>

using std::string;

string getFileName(const string& s) {
char sep = '/';
#ifdef _WIN32
sep = '\\';
#endif
size_t i = s.rfind(sep, s.length());
if (i != string::npos) 
{
string filename = s.substr(i+1, s.length() - i);
size_t lastindex = filename.find_last_of("."); 
string rawname = filename.substr(0, lastindex); 
return(rawname);
}

return("");
}

int main(int argc, char** argv) {

string path = "/home/aymen/hello_world.cpp";
string ss = getFileName(path);
std::cout << "The file name is \"" << ss << "\"\n";
}
1
  • This is an obsolete approach since c++17 introduced std::filesystem::path, and specifically its stem() function. Jul 3, 2021 at 18:34
0

I also use this snippet to determine the appropriate slash character:

boost::filesystem::path slash("/");
    boost::filesystem::path::string_type preferredSlash = slash.make_preferred().native();

and then replace the slashes with the preferred slash for the OS. Useful if one is constantly deploying between Linux/Windows.

0

For linux or unix machines, the os has two functions dealing with path and file names. use man 3 basename to get more information about these functions. The advantage of using the system provided functionality is that you don't have to install boost or needing to write your own functions.

#include <libgen.h>
       char *dirname(char *path);
       char *basename(char *path);

Example code from the man page:

   char *dirc, *basec, *bname, *dname;
           char *path = "/etc/passwd";

           dirc = strdup(path);
           basec = strdup(path);
           dname = dirname(dirc);
           bname = basename(basec);
           printf("dirname=%s, basename=%s\n", dname, bname);

Because of the non-const argument type of the basename() function, it is a little bit non-straight forward using this inside C++ code. Here is a simple example from my code base:

string getFileStem(const string& filePath) const {
   char* buff = new char[filePath.size()+1];
   strcpy(buff, filePath.c_str());
   string tmp = string(basename(buff));
   string::size_type i = tmp.rfind('.');
   if (i != string::npos) {
      tmp = tmp.substr(0,i);
   }
   delete[] buff;
   return tmp;
}

The use of new/delete is not good style. I could have put it into a try/catch block in case something happened between the two calls.

-1

Nickolay Merkin's and Yuchen Zhong's answers are great, but however from the comments you can see that it is not fully accurate.

The implicit conversion to std::string when printing will wrap the file name in quotations. The comments aren't accurate either.

path::filename() and path::stem() returns a new path object and path::string() returns a reference to a string. Thus something like std::cout << file_path.filename().string() << "\n" might cause problems with dangling reference since the string that the reference points to might have been destroyed.

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