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I expect git checkout <commit> to flash both the working tree and index to the <commit> version. However, in some cases it will keep the current changes in both the working tree and index. For example:

git branch br1
git branch br2
git checkout br1
<make change M1 to file foo>
git add foo
<make change M2 to file foo>
git checkout br2

Now all the working tree/index changes made in branch br1 are kept in the branch br2, as git status on br2 won't give a clean message. I guess this is because the head of br1 and br2 originally have the same version of file foo, and Git can automatically detect this.

Question:

  • When does Git decide not to flash the working tree and index? Are there any other corner cases?
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This isn't a corner case, the idea is that you may decide that before committing that you want to commit on a new branch. So long as the switch from one branch to another won't overwrite any modified files/cause issues for the index git will simply switch over to the branch. –  X-Istence Oct 31 '12 at 20:01
    
@X-Istence But how does git decide it won't cause issues? –  Cyker Oct 31 '12 at 20:29

1 Answer 1

up vote 3 down vote accepted

The git checkout command actually has two different (common) operating modes.

  1. If you run git checkout <branch>, then you will switch to branch <branch>. All changes to the working tree will be kept -- and this works by merging the uncommitted changes to the target branch, so it can fail. Changes in the index will be stashed.

  2. If you run git checkout <path>, then git will wipe out the changes to <path> in both the index and the working copy by getting them from the current commit.

So the purpose of git checkout <branch> is in case you decide that the changes you're making actually belong on a different branch.

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