Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have created jekyll site. Regarding the deployment I don't want to host on github pages. To host private domain I came know from documentation to copy the all files from _site folder. That's all wicked.

Question:

  1. Each time I add new blog post, I am running cmd>jekyll build then I am copying newly created html to hosted domain. Is there any easy way to update without compiling each time ?

  2. The reason, Why I am asking is because it will updated by non technical person

Thanks for the help!!

share|improve this question

2 Answers 2

up vote 1 down vote accepted

If you don't want to use GitHub Pages, AFAIK there's no other way than to compile your site each time you make a change.

But of course you can script/automate as much as possible.
That's what I do with my own blog as well. I'm hosting it on my own webspace instead of GitHub Pages, so I need to do these steps for each update:

  1. Compile on local machine
  2. Upload via FTP

I can do this with a single click (okay, a single double-click).


Note: I'm on Windows, so the following solution is for Windows.
But if you're using Linux/MacOS/whatever, of course you can use the tools given there to build something similar.


I'm using a batch file (the Windows equivalent to a shell script) to compile my site and then call WinSCP, a free command-line FTP client.

WinSCP allows me to store session configurations, so I saved the connection to my server there once.
Because of this, I didn't want to commit WinSCP to my (public) repository, so my script expects WinSCP in the parent folder.

The batch file looks like this:

call jekyll build

echo If the build succeeded, press RETURN to upload!

pause

set uploadpath=%~dp0\_site
%~dp0\..\winscp.com /script=build-upload.txt /xmllog=build-upload.log

pause

The first parameter in the WinSCP call (/script=build-upload.txt) specifies the script file which contains the actual WinSCP commands

This is in the script file:

option batch abort
option confirm off

open blog
synchronize remote -delete "%uploadpath%"

close
exit

Some explanations:

  1. %~dp0 (in the batch file) is the folder where the current batch file is
  2. The set uploadpath=... line (in the batch file) saves the complete path to the generated site into an environment variable
  3. The open blog line (in the script file) opens a connection to the pre-saved session configuration (which I named blog)
  4. The synchronize remote ... line (in the script file) uses the synchronize command to sync from the local folder (saved in %uploadpath%, the environment variable from step 2) to the server.

IMO this solution is suitable for non-technical persons as well.
If the technical person in your case doesn't know how to use source control, you could even script committing & pushing, too.

share|improve this answer

There are a number of options available which are mentioned in the documentation: http://jekyllrb.com/docs/deployment-methods/

If you are using Git, I would recommend the Git Post-Receive Hook approach. It simply builds the site after the new code is received:

GIT_REPO=$HOME/myrepo.git
TMP_GIT_CLONE=$HOME/tmp/myrepo
PUBLIC_WWW=/var/www/myrepo

git clone $GIT_REPO $TMP_GIT_CLONE
jekyll build -s $TMP_GIT_CLONE -d $PUBLIC_WWW
rm -Rf $TMP_GIT_CLONE
exit

Since you mentioned that it will be updated by a non-technical person, you might try something like rack-jekyll to automatically rebuild when new files are FTP'd.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.