164

In Qt, how do I check if a given folder exists in the current directory?
If it doesn't exist, how do I then create an empty folder?

238

To check if a directory named "Folder" exists use:

QDir("Folder").exists();

To create a new folder named "MyFolder" use:

QDir().mkdir("MyFolder");
4
  • 1
    How does this answer compare to @Petrucio's answer? I can't deduce this from the docs. Apr 27 '16 at 20:33
  • 1
    Why it isn't static? QDir::exists("absolutepath") and QDir::mkdir(""absolutepath")
    – yalov
    Jun 19 '17 at 17:20
  • @yalov - because it would collide with non-static QDir::mkdir("relative_path"). Not possible to have both overloads. Oct 13 '17 at 21:51
  • 8
    @JonasG.Drange This answer does not create intermediate folders in a complex/path/structure/with/intermediate/folders. My answer is objectively better; the reason it has less upvotes is because it was posted two years after this one.
    – Petrucio
    Nov 17 '17 at 6:56
178

To both check if it exists and create if it doesn't, including intermediaries:

QDir dir("path/to/dir");
if (!dir.exists())
    dir.mkpath(".");
0
12

When you use QDir.mkpath() it returns true if the path already exists, in the other hand QDir.mkdir() returns false if the path already exists. So depending on your program you have to choose which fits better.

You can see more on Qt Documentation

0

If you need an empty folder you can loop until you get an empty folder

    QString folder= QString ("%1").arg(QDateTime::currentMSecsSinceEpoch());
    while(QDir(folder).exists())
    {
         folder= QString ("%1").arg(QDateTime::currentMSecsSinceEpoch());
    }
    QDir().mkdir(folder);

This case you will get a folder name with a number .

-13

Why use anything else?

  mkdir(...);
1
  • 1
    Because you can't use it like that in Qt.
    – Patapoom
    Sep 8 '20 at 13:46

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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