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git branch -a --contains <hash> gives me all those branches containing hash. what I want is git branch -a --no-contains <hash>. Unfortunately, there doesn't seem to be a command to accomplish this, so I'm thinking the solution is something like:

git branch -a | grep -v output of(git branch -a --contains) but my bash isn't up to the task.

Show all branches that commit A is on and commit B is not on? would seem to apply, but the approach seems more complicated than necessary.

What is the best/most simple approach to accomplish the above?

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3 Answers 3

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grep has a -F option which matches fixed strings. Would be useful for what you're doing.

git branch -a | grep -vF "$(git branch -a --contains <hash>)"

Unfortunately, -F will filter out branches names that have a partial match. As suggested by antak, we can use comm instead for a more reliable diff.

git branch -a | sort | comm -3 - <(git branch -a --contains <hash> | sort)
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    Note that this will incorrectly hide branches that partially match names of branches that contains said commit. e.g. echo -e "aaa\nbbb" | grep -vF "$(echo aa)"
    – antak
    Commented Nov 27, 2015 at 2:32
  • @antak Thanks! Good catch!
    – leedm777
    Commented Dec 1, 2015 at 20:47
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The --no-contains flag was added in Git 2.13.

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Since the accepted answer will run afoul if branch names partially match, here's one that handles this situtuation.

git branch -a | comm -3 - <(git branch -a --contains <hash>)

| sort may be added to the end of both commands if the comm: file 1 is not in sorted order warning disturbs you. However, this is not necessary for getting correct results as the ordering of the two inputs are equivalent.

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