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If you want to move the HEAD to the parent of the current HEAD, that's easy:

git reset --hard HEAD^

But is there any simple way to do the exact opposite of this operation, that is, set the head to the current head's first child commit?

Right now, I use gitk as a workaround (alt-tab, up-arrow, alt-tab, middle-click), but I would like a more elegant solution, one that can also be used when gitk is not available.

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See also the script/command git children-of! –  VonC Nov 22 '13 at 9:49
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9 Answers

up vote 12 down vote accepted

Very probably not the fastest possible solution, but it does what I need:

#!/bin/bash

REV=$1

if [ x$REV == x ]; then
    echo "Usage: git-get-child  []"
    exit
fi

HASH=$(git-rev-parse $REV)

NUM=$2

if [ x$NUM == x ]; then
    NUM=1
fi

git rev-list --all --parents | grep " $HASH" | sed -n "${NUM}s/\([^ ]*\) .*$/\\1/p"

The git rev-list --all --parents does exactly what I need: it iterates over all reachable commits, and prints the following line for each:

SHA1_commit SHA1_parent1 SHA1_parent2 etc.

The space in the grep expression ensures that only those lines are found where the SHA1 in question is a parent. Then we get the nth line for the nth child and get the child's SHA1.

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I believe it should be git rev-list --all --parents | grep -m 1 -B $(($NUM-1)) " $HASH" | head -1 | sed 's/ .*//' else it doesn't quite work when $NUM != 1 –  Schwern Feb 27 '10 at 3:08
2  
See below for a potentially significant performance improvement –  MatrixFrog Apr 7 '11 at 6:01
    
Note that this does not find dangling commits, i.e. commits no longer reachable from any branch. git reset --hard HEAD^ will typically make the HEAD commit unreachable (unless it is also on a branch). So this may not find all commits. To find all commits, git rev-list --walk-reflog and/or git fsck --unreachable must be used. –  sleske Sep 10 '12 at 9:38
    
should be git rev-parse and not git-rev-parse -- won't let me edit the post. –  ben.snape Feb 13 '13 at 13:29
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The above method using git rev-list --all considers all available commits, which can be a lot and is often not necessary. If the interesting child commits are reachable from some branch, the number of commits that a script interested in child commits needs to process can be reduced:

branches=$(git branch --contains $commit)

will determine the set of branches that $commit is an ancestor of.

Using this set, git rev-list --parents ^$commit $branches should yield exactly the set of all parent-child relationships between $commit and all branch heads that it is an ancestor of.

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This worked for me, however I did have to filter out the '* (no branch)' row, as I was at that point on a detached branch. For my repository this was about 10 times as fast, 0.13 s vs 1.4 seconds. –  Paul Wagland Jan 20 '13 at 15:59
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You can use gitk ... since there can be more than one child there is probably no easy way like HEAD^.

If you want to undo your whole operation you can use the reflog, too. Use git reflog to find your commit’s pointer, which you can use for the reset command. See here.

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It is strictly not possible to give a good answer -- since git is distributed, most of the children of the commit you ask about might be in repositories that you don't have on your local machine! That's of course a silly answer, but something to think about. Git rarely implements operations that it can't implement correctly.

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6  
Of course I only need the children from the current repository. –  AttishOculus Nov 19 '09 at 9:38
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It depends on what you're asking. There could be an infinite number of children of the current head in an infinite number of branches, some local, some remote, and many that have been rebased away and are in your repository, but not part of a history you intend to publish.

For a simple case, if you have just done a reset to HEAD^, you can get back the child you just threw away as HEAD@{1}.

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Based on the answer given in How do I find the next commit in git?, I have another solution that works for me.

Assuming that you want to find the next revision on the "master" branch, then you can do:

git log --reverse ${commit}..master | sed 's/commit //; q'

This also assumes that there is one next revision, but that is kind of assumed by the question anyway.

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You can use the gist of the creator for Hudson (now Jenkins) Kohsuke Kawaguchi (November 2013):
kohsuke / git-children-of:

Given a commit, find immediate children of that commit.

#!/bin/bash -e
# given a commit, find immediate children of that commit.
for arg in "$@"; do
  for commit in $(git rev-parse $arg^0); do
    for child in $(git log --format='%H %P' --all | grep -F " $commit" | cut -f1 -d' '); do
      git describe $child
    done
  done
done

Put that script in a folder referenced by your $PATH, and simply type:

git children-of <a-commit>
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Based partly on Paul Wagland's answer and partly on his source, I am using the following:

git log --ancestry-path --format=%H ${commit}..master | tail -1

I found that his answer gave me the wrong answer for older commits (possibly due to merging?), where the primary difference is the --ancestry-path flag.

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git reset --hard f3f1efb

is a simple way to perform the exact same operation, if you know the hash. Finding it is as easy as git reflog.

I'm sure you already knew this, so I'll just leave this here for git newbies who don't care so much about finding the nth child and care more about reverting to a "safe" commit.

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