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How do I force git to run a post-receive hook on a server even if I don't have a new commit to push?

Background

I use git to automatically deploy a website to a server. I have a bare repo in a protected area of the server and a post-receive hook that checks out the contents and systematically copies over certain files into a public_html folder. (Inspired by this tutorial)

I got tired of modifying the post-recieve hook manually on the server, so my post-receive hook now actually copies over a new version of itself from the repo:

#!/bin/sh

rm -rf ~/../protected/*
GIT_WORK_TREE=~/../protected git checkout -f

# Rewrite over this file with any updates from the post-receive file
cp ~/../protected/post-receive hooks/post-receive

# Delete public_html
# Copy stuff public_html

The problem, of course, is that the new post-receive hook never gets run. A seemingly simple solution would be merely to push again, but now everything is already up to date. This is annoying, because it requires me to fake a new commit every time I update the post-receive hook. Is there a way to invoke the post-receive hook without faking a commit or sshing in?

What I tried

git push
git push -f
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3 Answers 3

I'm afraid you have to ssh to the server and run the hook script manually. git push doesn't make the server run the pre-push, pre-receive and post-receive hooks if there was nothing added (i.e. when git prints Everything up-to-date).

The rest of the answer is about version-tracking the post-receive hook, so you can modify it without sshing to the server.

Add a shell script named do-post-receive to the local repository:

$ ls -ld .git
$ echo 'echo "Hello, World!"' >do-post-receive
$ git add do-post-receive
$ git commit do-post-receive -m 'added do-post-receive'

Replace your hooks/post-receive hook on the server with:

#! /bin/sh
while read OLDID NEWID BRANCH; do
  test "$BRANCH" = refs/heads/master && eval "$(git show master:do-post-receive)"
done

(Make sure to chmod 755 hooks/post-receive on the server.)

Push your changes from the local repository to the server, and watch your do-post-receive code run:

$ git push origin master
...
remote: Hello, World!
...
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Very clever! Unfortunately I may not be able to try this out for awhile to give the accept... But be patient with me. –  AndyL Apr 13 '13 at 11:29
    
Sounds promising, more than my answer anyway. +1 –  VonC Apr 13 '13 at 15:08
    
This did not work at all for me. I think you'd be better off clearing out the changes every time and doing a full repository push instead. –  Jay Taylor Aug 22 '13 at 23:50
    
Yes, unfortunately it doesn't work, and none of the pre-push, pre-receive or post-receive hooks are run on the server if there are no changes. –  pts Aug 23 '13 at 21:23
    
You're almost there! The problem is that the post-receive script is run with a --censored-- pipe as its standard input, so having read the input with while read ... there's little or nothing left for the do-post-receive script to read. (I wrote a thing called git_xhook that allowed multiple, extended hooks; it's too big for this comment, but this could get you there.) –  torek Aug 24 '13 at 0:50

Use '--allow-empty'

After the initial push replacing the script, you can do this :

git commit --allow-empty -m 'push to execute post-receive'

The --allow-empty flag overrides git's default behavior of preventing you from making a commit when there are no changes.

Use an alias and make your life even easier

Add the following to ~/.gitconfig

[alias]
    pushpr = "!f() { git push origin master;git commit --allow-empty -m 'push to execute post-receive';git push origin master; }; f"

Now Just do git pushpr

git pushpr

This will push any changes to master, which in your case will trigger your post receive replacement script, then it will push again (using the --allow-empty flag) which will then execute your updated post-receive script.

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If you don’t want to have the extra commit, you can combine --allow-empty with --amend and -m The message from the last commit, but caution: that will rewrite the history of the last commit. Don’t use unless you’re the only developer. You’ll have to force push the next time. –  Andrew Mar 24 at 3:56

I know this probably going to be considered "dangerous" but I like to live on the edge.

I just delete the remote branch and then push it again. Make sure your local branch is up-to-date first to limit the chance of losing stuff.

So if I want to trigger post-receive, in my case to get the testing branch to provision, all I do is:

$ git push origin :testing
$ git push origin testing

Don't accept this as the answer though. It's more of a just FYI thing.

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This is actually handy, if it's really just a read-only remote. –  Alan Aug 13 '14 at 0:48

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