https://github.com/cgentemann/cloud_science
NASA cloud science tutorials and science use cases
Science Score: 23.0%
This score indicates how likely this project is to be science-related based on various indicators:
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○CITATION.cff file
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✓codemeta.json file
Found codemeta.json file -
○.zenodo.json file
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○DOI references
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○Academic publication links
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✓Committers with academic emails
2 of 9 committers (22.2%) from academic institutions -
○Institutional organization owner
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○JOSS paper metadata
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○Scientific vocabulary similarity
Low similarity (14.3%) to scientific vocabulary
Repository
NASA cloud science tutorials and science use cases
Basic Info
- Host: GitHub
- Owner: cgentemann
- License: apache-2.0
- Language: Jupyter Notebook
- Default Branch: master
- Size: 504 MB
Statistics
- Stars: 25
- Watchers: 3
- Forks: 19
- Open Issues: 5
- Releases: 0
Metadata Files
README.md
Tutorial materials

This repository tutorial materials for tutorials on cloud data. The links below will launch an interactive environment on binder.pangeo.io Note that binder environments are ephemeral. Any changes you make will be lost once your session ends, and you shouldn't store passwords.
To explore Pangeo data on GCP (eg. CCMP), select the button 'Pangeo Binder GCP US-central1', and then, once the binder initializes, select 'tutorials'.
To explore 3 difference cloud-optimized datasets (MUR SST, GOES, ERA5), select button below 'Pangeo Binder AWS US-west1', and then, once the binder initializes, select 'tutorials'.
Tutorial Highlights
- About Pangeo: Pangeo is a community effort for big data in the geosciences using Python. A key component of the Pangeo effort is the improved integration of Xarray and Dask to enable analysis of very large datasets.
- About Jupyter: Project Jupyter exists to develop open-source software, open-standards, and services for interactive computing across dozens of programming languages. The Jupyter Notebook is an open-source web application that allows you to create and share documents that contain live code, equations, visualizations and narrative text. Uses include: data cleaning and transformation, numerical simulation, statistical modeling, data visualization, machine learning, and much more.
- About Xarray: Xarray is an open source project and Python package that aims to bring the labeled data power of pandas to the physical sciences, by providing N-dimensional variants of the core pandas data structures.
- About Dask: Dask is a flexible parallel computing library for analytic computing.
- About Geopandas: Geopandas is a library to facilitate analysis of geospatial vector data
- About Intake: Intake is a cataloging system designed to "Take the pain out of data access and distribution"
Workshops
- 2020 OceanHackWeek: OceanHackWeek2020 tutorials.
- 2018 AGU workshop: Scalable Geoscience Tools in Python — Xarray, Dask, and Jupyter.
- 2019 AGU workshop: Pangeo: Hands on with JupyterHub and Open-source Python Tools for Scalable Analysis of Big Data in the Geosciences
Acknowledgements
At its core, Pangeo is a community effort built around open-source software. As such, the credit for the developments of the software described here belongs with the community that created it.
Elements of this tutorial were taken from the xarray, Dask, Cartopy, Holoviews, and Geoviews documentation. Some pieces of text in the xarray portion of the tutorial were adapted from Hoyer and Hamman (2016).
Pangeo is supported by the National Science Foundation (NSF) via the EarthCube Program and the National Aeronautics and Space Administration via the ACCESS Program. NCAR is separately supported by the National Science Foundation (NSF).
Google provided compute credits on Google Compute Engine. Amazon provided compute credits on AWS

This work is licensed under a Creative Commons Attribution 4.0 International License.
Owner
- Name: Chelle Gentemann
- Login: cgentemann
- Kind: user
- Location: Santa Rosa, CA
- Company: NASA HQ
- Website: cgentemann.github.io
- Twitter: ChelleGentemann
- Repositories: 69
- Profile: https://github.com/cgentemann
Physical Oceanographer
GitHub Events
Total
- Watch event: 3
- Push event: 4
- Fork event: 1
Last Year
- Watch event: 3
- Push event: 4
- Fork event: 1
Committers
Last synced: over 1 year ago
Top Committers
| Name | Commits | |
|---|---|---|
| Chelle Gentemann | 3****n | 419 |
| Marisol Garcia-Reyes | m****r@g****m | 43 |
| Senya Stein | s****1@g****m | 9 |
| Ed Armstrong | e****g@j****v | 4 |
| Gentemann | c****3@n****v | 4 |
| Lewis John McGibbney | l****y@g****m | 2 |
| Jeffrey Dorman | j****n@J****l | 2 |
| Caitlin Kroeger | 6****r | 1 |
| Jeffrey Dorman | j****n@J****t | 1 |
Committer Domains (Top 20 + Academic)
Issues and Pull Requests
Last synced: over 1 year ago
All Time
- Total issues: 5
- Total pull requests: 13
- Average time to close issues: 1 day
- Average time to close pull requests: about 20 hours
- Total issue authors: 2
- Total pull request authors: 5
- Average comments per issue: 1.0
- Average comments per pull request: 0.31
- Merged pull requests: 12
- Bot issues: 0
- Bot pull requests: 0
Past Year
- Issues: 0
- Pull requests: 0
- Average time to close issues: N/A
- Average time to close pull requests: N/A
- Issue authors: 0
- Pull request authors: 0
- Average comments per issue: 0
- Average comments per pull request: 0
- Merged pull requests: 0
- Bot issues: 0
- Bot pull requests: 0
Top Authors
Issue Authors
- cgentemann (4)
- abarciauskas-bgse (1)
Pull Request Authors
- marisolgr (5)
- lewismc (3)
- jeffdorman (2)
- edshred2000 (2)
- caitlinkroeger (1)