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Is there a command that will let me checkout a commit based on its distance from the current commit instead of using commit IDs?

Use Case

Basically I am thinking of setting up a cron job type script to do the following on a build server:

  • Pull down the latest of a specific git branch (git pull dev).
  • Build it, run the tests.
  • If the pass percentage is lower than the last stored percentage:
    • Recursively go back a commit, build, run tests, until it finds the commit where the percentage changed.
    • Log the commits that introduced regressions.

I have a rough idea for how this would hinge together but it won't work unless I can go back one commit periodically.

If there is no specific command I suppose I could grep the commit log and take the first one each time?

I appreciate any ideas or help!

Unlike: How to undo last commit(s) in Git?

I want to go back "N" number of commits.

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2 Answers 2

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git checkout HEAD~N

will checkout the Nth commit before your current commit.

If you have merge commits in your history, you may be interested in

git checkout HEAD^N

which will checkout the Nth parent of a merge commit (most merge commits have 2 parents).

So, to always go back one commit following the first parent of any merge commits:

git checkout HEAD^1

You may also be interested in git bisect - Find by binary search the change that introduced a bug.

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  • 1
    Also, repeating ^ takes you back one each time, e.g. HEAD^^^ is the same as HEAD~3. Docs are in git help rev-parse (which is used by many commands).
    – 13ren
    May 24, 2013 at 16:29
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    ~ actually always follows first parents according to the Git docs: "A suffix ~<n> to a revision parameter means the commit object that is the <n>th generation ancestor of the named commit object, following only the first parents."
    – user456814
    May 24, 2013 at 16:44
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    The original poster should really take a look at automating git bisect actually. There's also a section about it in the Pro Git book.
    – user456814
    May 25, 2013 at 5:15
  • I would also like to point out that the 1 in git checkout HEAD^1 is redundant, since ^ implies the first parent by default when no number is given.
    – user456814
    May 25, 2013 at 5:26
  • this answer answers my original question and TheShadow added the icing on the cake with the link to the bisect command thanks!! May 29, 2013 at 13:48
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Iterating over each commit and running the tests could be really inefficient if the number of commits is much larger than the number of commits that introduce errors. There's no need to run the tests against every commit in the history, to find the one that introduced the error! You really should look at git bisect, particularly git bisect run.

The question indicates you want to find every commit that introduced an error since some point in history, not just the most recently introduced one. I don't think you can do that with one invocation of git bisect; you'll have to put it in a loop in a small script.

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    this is a great answer to my question, i had to give best answer to Peter as he answered my original question however git bisect is definitely a command i will use, thanks! May 29, 2013 at 13:49

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