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We forgot to update the primary link from git.html leading to the tutorial, and also forgot to build and install the renamed core-tutorial document. Signed-off-by: Junio C Hamano <junkio@cox.net>
404 lines
13 KiB
Text
404 lines
13 KiB
Text
A tutorial introduction to git
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==============================
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This tutorial explains how to import a new project into git, make
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changes to it, and share changes with other developers.
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First, note that you can get documentation for a command such as "git
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diff" with:
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$ man git-diff
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------------------------------------------------
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Importing a new project
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-----------------------
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Assume you have a tarball project.tar.gz with your initial work. You
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can place it under git revision control as follows.
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$ tar xzf project.tar.gz
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$ cd project
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$ git init-db
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------------------------------------------------
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Git will reply
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------------------------------------------------
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defaulting to local storage area
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------------------------------------------------
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You've now initialized the working directory--you may notice a new
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directory created, named ".git". Tell git that you want it to track
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every file under the current directory with
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$ git add .
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------------------------------------------------
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Finally,
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$ git commit -a
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will prompt you for a commit message, then record the current state
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of all the files to the repository.
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Try modifying some files, then run
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$ git diff
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to review your changes. When you're done,
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$ git commit -a
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will again prompt your for a message describing the change, and then
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record the new versions of the modified files.
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A note on commit messages: Though not required, it's a good idea to
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begin the commit message with a single short (less than 50 character)
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line summarizing the change, followed by a blank line and then a more
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thorough description. Tools that turn commits into email, for
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example, use the first line on the Subject line and the rest of the
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commit in the body.
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To add a new file, first create the file, then
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$ git add path/to/new/file
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------------------------------------------------
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then commit as usual. No special command is required when removing a
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file; just remove it, then commit.
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At any point you can view the history of your changes using
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$ git whatchanged
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If you also want to see complete diffs at each step, use
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$ git whatchanged -p
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Managing branches
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-----------------
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A single git repository can maintain multiple branches of
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development. To create a new branch named "experimental", use
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$ git branch experimental
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If you now run
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$ git branch
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you'll get a list of all existing branches:
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experimental
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* master
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The "experimental" branch is the one you just created, and the
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"master" branch is a default branch that was created for you
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automatically. The asterisk marks the branch you are currently on;
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type
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$ git checkout experimental
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to switch to the experimental branch. Now edit a file, commit the
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change, and switch back to the master branch:
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(edit file)
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$ git commit -a
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$ git checkout master
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------------------------------------------------
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Check that the change you made is no longer visible, since it was
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made on the experimental branch and you're back on the master branch.
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You can make a different change on the master branch:
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(edit file)
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$ git commit -a
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at this point the two branches have diverged, with different changes
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made in each. To merge the changes made in the two branches, run
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$ git pull . experimental
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If the changes don't conflict, you're done. If there are conflicts,
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markers will be left in the problematic files showing the conflict;
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$ git diff
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will show this. Once you've edited the files to resolve the
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conflicts,
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$ git commit -a
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will commit the result of the merge. Finally,
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$ gitk
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will show a nice graphical representation of the resulting history.
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If you develop on a branch crazy-idea, then regret it, you can always
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delete the branch with
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$ git branch -D crazy-idea
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-------------------------------------
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Branches are cheap and easy, so this is a good way to try something
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out.
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Using git for collaboration
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---------------------------
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Suppose that Alice has started a new project with a git repository in
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/home/alice/project, and that Bob, who has a home directory on the
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same machine, wants to contribute.
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Bob begins with:
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$ git clone /home/alice/project myrepo
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This creates a new directory "myrepo" containing a clone of Alice's
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repository. The clone is on an equal footing with the original
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project, posessing its own copy of the original project's history.
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Bob then makes some changes and commits them:
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(edit files)
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$ git commit -a
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(repeat as necessary)
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------------------------------------------------
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When he's ready, he tells Alice to pull changes from the repository
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at /home/bob/myrepo. She does this with:
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$ cd /home/alice/project
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$ git pull /home/bob/myrepo
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This actually pulls changes from the branch in Bob's repository named
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"master". Alice could request a different branch by adding the name
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of the branch to the end of the git pull command line.
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This merges Bob's changes into her repository; "git whatchanged" will
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now show the new commits. If Alice has made her own changes in the
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meantime, then Bob's changes will be merged in, and she will need to
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manually fix any conflicts.
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A more cautious Alice might wish to examine Bob's changes before
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pulling them. She can do this by creating a temporary branch just
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for the purpose of studying Bob's changes:
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$ git fetch /home/bob/myrepo master:bob-incoming
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-------------------------------------
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which fetches the changes from Bob's master branch into a new branch
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named bob-incoming. (Unlike git pull, git fetch just fetches a copy
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of Bob's line of development without doing any merging). Then
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-------------------------------------
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$ git whatchanged -p master..bob-incoming
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-------------------------------------
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shows a list of all the changes that Bob made since he branched from
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Alice's master branch.
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After examing those changes, and possibly fixing things, Alice can
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pull the changes into her master branch:
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$ git checkout master
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$ git pull . bob-incoming
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The last command is a pull from the "bob-incoming" branch in Alice's
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own repository.
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Later, Bob can update his repo with Alice's latest changes using
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-------------------------------------
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$ git pull
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Note that he doesn't need to give the path to Alice's repository;
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when Bob cloned Alice's repository, git stored the location of her
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repository in the file .git/remotes/origin, and that location is used
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as the default for pulls.
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Bob may also notice a branch in his repository that he didn't create:
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$ git branch
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* master
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origin
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The "origin" branch, which was created automatically by "git clone",
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is a pristine copy of Alice's master branch; Bob should never commit
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to it.
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If Bob later decides to work from a different host, he can still
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perform clones and pulls using the ssh protocol:
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$ git clone alice.org:/home/alice/project myrepo
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Alternatively, git has a native protocol, or can use rsync or http;
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see gitlink:git-pull[1] for details.
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Git can also be used in a CVS-like mode, with a central repository
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that various users push changes to; see gitlink:git-push[1] and
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link:cvs-migration.html[git for CVS users].
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Keeping track of history
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------------------------
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Git history is represented as a series of interrelated commits. The
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most recent commit in the currently checked-out branch can always be
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referred to as HEAD, and the "parent" of any commit can always be
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referred to by appending a caret, "^", to the end of the name of the
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commit. So, for example,
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git diff HEAD^ HEAD
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shows the difference between the most-recently checked-in state of
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the tree and the previous state, and
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-------------------------------------
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git diff HEAD^^ HEAD^
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-------------------------------------
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shows the difference between that previous state and the state two
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commits ago. Also, HEAD~5 can be used as a shorthand for HEAD^^^^^,
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and more generally HEAD~n can refer to the nth previous commit.
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Commits representing merges have more than one parent, and you can
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specify which parent to follow in that case; see
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gitlink:git-rev-parse[1].
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The name of a branch can also be used to refer to the most recent
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commit on that branch; so you can also say things like
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git diff HEAD experimental
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to see the difference between the most-recently committed tree in
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the current branch and the most-recently committed tree in the
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experimental branch.
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But you may find it more useful to see the list of commits made in
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the experimental branch but not in the current branch, and
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git whatchanged HEAD..experimental
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will do that, just as
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git whatchanged experimental..HEAD
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will show the list of commits made on the HEAD but not included in
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experimental.
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You can also give commits convenient names of your own: after running
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-------------------------------------
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$ git-tag v2.5 HEAD^^
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you can refer to HEAD^^ by the name "v2.5". If you intend to share
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this name with other people (for example, to identify a release
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version), you should create a "tag" object, and perhaps sign it; see
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gitlink:git-tag[1] for details.
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You can revisit the old state of a tree, and make further
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modifications if you wish, using git branch: the command
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-------------------------------------
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$ git branch stable-release v2.5
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-------------------------------------
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will create a new branch named "stable-release" starting from the
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commit which you tagged with the name v2.5.
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You can reset the state of any branch to an earlier commit at any
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time with
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-------------------------------------
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$ git reset --hard v2.5
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-------------------------------------
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This will remove all later commits from this branch and reset the
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working tree to the state it had when the given commit was made. If
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this branch is the only branch containing the later commits, those
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later changes will be lost. Don't use "git reset" on a
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publicly-visible branch that other developers pull from, as git will
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be confused by history that disappears in this way.
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Next Steps
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----------
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Some good commands to explore next:
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* gitlink:git-diff[1]: This flexible command does much more than
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we've seen in the few examples above.
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* gitlink:git-format-patch[1], gitlink:git-am[1]: These convert
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series of git commits into emailed patches, and vice versa,
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useful for projects such as the linux kernel which rely heavily
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on emailed patches.
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* gitlink:git-bisect[1]: When there is a regression in your
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project, one way to track down the bug is by searching through
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the history to find the exact commit that's to blame. Git bisect
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can help you perform a binary search for that commit. It is
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smart enough to perform a close-to-optimal search even in the
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case of complex non-linear history with lots of merged branches.
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Other good starting points include link:everyday.html[Everday GIT
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with 20 Commands Or So] and link:cvs-migration.html[git for CVS
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users]. Also, link:core-tutorial.html[A short git tutorial] gives an
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introduction to lower-level git commands for advanced users and
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developers.
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