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Run shell script in Jupyter with live output

Project description

ipylivebash

The ipylivebash library is a shell script runner that enhances Jupyter's capabilities, transforming it into an valuable tool within the context of DevOps.

Features:

  • Live Magic: Added "%%livebash" live magic command to run shell script in Jupyter.
  • Execution Confirmation UI: Avoid accidental execution
  • Notification: Send a notification when the script finishes
  • Background Process Management: Show and kill background process
  • Logging: Log output to a file with/without timestamp information
  • Python API: For running script easily

Screenshots

screenshot1.png

Execution Confirmation

ask_confirm.png

Example

%%livebash --save log.txt --save-timestamp

find .

Run find . and show the output in the Jupyter notebook, and also save it to log-${current_timestamp}.txt.

%%livebash --ask-confirm --notify
set -e
deploy_script

Before running the deploy_script, show a panel to ask for confirmation. Once it is finished, inform the user with a browser notification.

Usage

usage: livebash [-h] [-ps] [--save OUTPUT_FILE] [--save-timestamp]
                [--line-limit LINE_LIMIT] [--height HEIGHT] [--ask-confirm]
                [--notify]

options:
  -h, --help
  -ps, --print-sessions
  --save OUTPUT_FILE    Save output to a file
  --save-timestamp      Add timestamp to the output file name
  --line-limit LINE_LIMIT
                        Restrict the no. of lines to be shown
  --height HEIGHT       Set the height of the output cell (no. of line)
  --ask-confirm         Ask for confirmation before execution
  --notify              Send a notification when the script finished

Options

--save OUTPUT_FILE

Save the output to a file.

If the file name already exists, it will add a suffix to avoid overriding the original file.

--save-timestamp

Add timestamp to the output file name.

--line-limit LINE_LIMIT

If the no. of line output exceed the limit, it may be truncated. It will show the last 5 lines only.

--height HEIGHT

Set the height of the output cell

--ask-confirm

Ask for confirmation before execution

ask_confirm.png

--notify

Send a notification when the script finished

Installation

You can install using pip:

pip install ipylivebash

Remarks: If you are using Jupyter Notebook 5.2 or earlier, you may also need to enable the nbextension:

jupyter nbextension enable --py [--sys-prefix|--user|--system] ipylivebash

Development Installation

Create a dev environment:

conda create -n ipylivebash-dev -c conda-forge nodejs yarn python jupyterlab
conda activate ipylivebash-dev

Install the python. This will also build the TS package.

pip install -e ".[test, examples]"

When developing your extensions, you need to manually enable your extensions with the notebook / lab frontend. For lab, this is done by the command:

jupyter labextension develop --overwrite .
yarn run build

For classic notebook, you need to run:

jupyter nbextension install --sys-prefix --symlink --overwrite --py ipylivebash
jupyter nbextension enable --sys-prefix --py ipylivebash

Note that the --symlink flag doesn't work on Windows, so you will here have to run the install command every time that you rebuild your extension. For certain installations you might also need another flag instead of --sys-prefix, but we won't cover the meaning of those flags here.

How to see your changes

Typescript:

If you use JupyterLab to develop then you can watch the source directory and run JupyterLab at the same time in different terminals to watch for changes in the extension's source and automatically rebuild the widget.

# Watch the source directory in one terminal, automatically rebuilding when needed
yarn run watch
# Run JupyterLab in another terminal
jupyter lab

After a change wait for the build to finish and then refresh your browser and the changes should take effect.

Python:

If you make a change to the python code then you will need to restart the notebook kernel to have it take effect.

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