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Due to the use of submodules in my projects I'm finding myself often on "(no branch)". As I'm also adding code to those submodules I'm committing in there. When I then want to push those submodules I need to be on a branch of course. Hence my question:

Is there a way/shortcut in git (command line) to set a local branch to the current commit/HEAD without the detour of

git checkout the_branch
git reset --hard <previous commit-ish>

To be more precise, my real problem with the above "detour" is that I'm temporarily leaving the original HEAD with the checkout-command. That can be avoid with the git branch -f command (thanks to CharlesB).

60

Checkout the branch with -B: this will reset the branch to HEAD, which is the current ref.

git checkout -B <branch> 

From the docs:

If -B is given, is created if it doesn’t exist; otherwise, it is reset. This is the transactional equivalent of

$ git branch -f <branch> [<start point>]
$ git checkout <branch>

that is to say, the branch is not reset/created unless "git checkout" is successful.

  • 4
    I now realize the "branch -f" command is what I'm looking for, because my real problem is that I don't want to "leave" the commit on which I'm currently sitting. Thanks. – Patrick B. Sep 28 '11 at 9:01
  • 1
    Link to official documentation: git-scm.com/docs/… – Arend v. Reinersdorff Mar 8 '17 at 20:14
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git checkout -B the_branch HEAD

This will checkout the_branch at commit HEAD, even if the_branch pointed somewhere else before. It was added in one of the last few git releases, so you might not have it available. An alternate route would be git branch -D the_branch && git checkout -b the_branch

  • I'm using git version 1.7.0.4 and checkout -B does not yet exists. But it's nice to see that it will be in the future. – Patrick B. Sep 28 '11 at 8:58

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