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I want to compare two files in a git repository and tell which one was introduced into the repository earlier (by ancestry, not timestamp). The naive way to do this is to find the individual commits that introduced the files (rev-list HEAD -- <filename> | tail -n 1), and query whether there are commits between them (rev-list commit1 ^commit2). However, this is slow and stupid. What about bisecting the history until we find a tree that contains one file but not the other?

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3 Answers

Unless the files where introduced in the same linear branch (i.e., one in an ancestor of the other) there is no way of knowing. Say you introduce file A in your repo, and I introduce file B in mine. If later I clone from your repo, there is no way of knowing which came first. Sure, we could synchronize clocks, but that is outside of git. The only notion of "time" for git is the ancestorship relation, others are just not comparable.

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What does this general truth have to do with my question? I specifically said "ancestry": the output should either be 1. file1 is older than file2, 2. file2 is older than file1, or 3. the relationship is undefined. –  Ramkumar Ramachandra Mar 20 '13 at 20:16
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Based on what I understand you're after, this may be what you're looking for:

git log --topo-order --reverse --oneline --name-only --pretty=format:"%Cgreen%ci %Cblue%cr %Cred%cn %Cgreen%h %Creset" <file1> <file2> | head -n10

--topo-order
Show no parents before all of its children are shown, and avoid showing commits on multiple lines of history intermixed.

--reverse
Output the commits in reverse order.

See: git-log for many more options and possible combinations.

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adding --remove-empty might make it faster: see Why is "git log <filename>" slow? (there is some other relevant info there as well) –  tcovo Mar 19 '13 at 3:57
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up vote 0 down vote accepted

Use diff-filter=A

git log --reverse --format=%H --name-status --diff-filter=A -- file1 file2 | grep ^A | cut -f2

For any number of files, you'll get the required ordering in one traversal.

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