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A stupid way I know is:

git diff commit-number1 commit-number2

any better way?

I mean I want to know the commit1 itself, I don't want to add the commit2 before it as parameter.

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While "git show <commit>" is the correct solution, you can use "git diff <commit>^!" to get diff between commit and its (first) parent. See man git-rev-parse(1) for details. –  Jakub Narębski Jul 21 '09 at 9:21

3 Answers 3

up vote 110 down vote accepted
git show <commit-id>
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works well too!:) –  arsane Jul 21 '09 at 8:06

Does

$ git log -p

do what you need?

Check out the chapter on Git Log in the Git Community Book for more examples. (Or look at the the documentation.)

Update: As others (Jakub and Bombe) already pointed out: although the above works, git show is actually the command that is intended to do exactly what was asked for.

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Thanks. git log -p commit-number works well. –  arsane Jul 21 '09 at 8:02

This is one way I know of. With git, there always seems to be more than one way to do it.

git log -p commit1 commit2
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