StevenNeal / the-turing-way

Host repository for The Turing Way: a how to guide for reproducible data science

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The Turing Way

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The Turing Way is a lightly opinionated guide to reproducible data science. You can read it here: https://the-turing-way.netlify.com You're currently viewing the project GitHub repository where all of the bits that make up the guide live, and where the process of writing/building the guide happens.

Our goal is to provide all the information that researchers need at the start of their projects to ensure that they are easy to reproduce at the end.

This also means making sure PhD students, postdocs, PIs and funding teams know which parts of the "responsibility of reproducibility" they can affect, and what they should do to nudge data science to being more efficient, effective and understandable.

Table of contents:

🎧 If you prefer an audio introduction to the project, our team member Rachael presented at the Open Science Fair 2019 in Porto and her demo was recorded by the Orion podcast. The Turing Way overview starts at minute 5:13.

About the project

Reproducible research is necessary to ensure that scientific work can be trusted. Funders and publishers are beginning to require that publications include access to the underlying data and the analysis code. The goal is to ensure that all results can be independently verified and built upon in future work. This is sometimes easier said than done. Sharing these research outputs means understanding data management, library sciences, software development, and continuous integration techniques: skills that are not widely taught or expected of academic researchers and data scientists. As these activities are not commonly taught, we recognise that the burden of requirement and new skill acquisition can be intimidating to individuals who are new to this world. The Turing Way is a handbook to support students, their supervisors, funders and journal editors in ensuring that reproducible data science is "too easy not to do" even for people who have never worked in this way before. It will include training material on version control, analysis testing, and open and transparent communication with future users, and build on Turing Institute case studies and workshops. This project is openly developed and any and all questions, comments and recommendations are welcome at our github repository: https://github.com/alan-turing-institute/the-turing-way.

The team

This is (part of) the project team planning work at the Turing Institute. For more on how to contact us, see the ways of working document.

Team photo

Contributing

🚧 This repository is always a work in progress and everyone is encouraged to help us build something that is useful to the many. 🚧

Everyone is asked to follow our code of conduct and to checkout our contributing guidelines for more information on how to get started.

If you are not familiar or confident contributing on GitHub, you can also contribute a case study and your tips and tricks via our Google submission form.

Citing The Turing Way

You can reference The Turing Way through the project's Zenodo archive using DOI: 10.5281/zenodo.3233853. DOIs allow us to archive the repository and they are really valuable to ensure that the work is tracked in academic publications.

The citation will look something like:

The Turing Way Community, Becky Arnold, Louise Bowler, Sarah Gibson, Patricia Herterich, Rosie Higman, … Kirstie Whitaker. (2019, March 25). The Turing Way: A Handbook for Reproducible Data Science (Version v0.0.4). Zenodo. http://doi.org/10.5281/zenodo.3233986

You can also share the human-readable URL to a page in the book, for example: https://the-turing-way.netlify.com/reproducibility/03/definitions.html, but be aware that the project is under development and therefore these links may change over time. You might want to include a web archive link such as: https://web.archive.org/web/20191030093753/https://the-turing-way.netlify.com/reproducibility/03/definitions.html to make sure that you don't end up with broken links everywhere!

We really appreciate any references that you make to The Turing Way project in your and we hope it is useful. If you have any questions please get in touch.

Citing The Turing Way illustrations

The Turing Way illustrations are created by artists from Scriberia as part of The Turing Way book dashes in Manchester on 17 May 2019, and London on 28 May 2019 and 21 February 2020. They depict a variety of content from the handbook, collaborative efforts in the community and The Turing Way project in general. These illustrations are available on Zenodo (https://zenodo.org/record/3695300) under a CC-BY license.

When using any of the images, please include the following attribution:

This image was created by Scriberia for The Turing Way community and is used under a CC-BY licence.

The latest version from Zenodo can be cited as:

The Turing Way Community, & Scriberia. (2020, March 3). Illustrations from the Turing Way book dashes. Zenodo. http://doi.org/10.5281/zenodo.3695300

We have used a few of these illustrations in the Welcome Bot's responses to new members' contributions in this GitHub repository.

Get in touch

We have a gitter chat room and we'd love for you to swing by to say hello at https://gitter.im/alan-turing-institute/the-turing-way. That room is also synchronised with Matrix at #the-turing-way:matrix.org and you're welcome to join us there if you prefer.

We also have a tiny letter mailing list to which we send monthly project updates. Subscribe at https://tinyletter.com/TuringWay.

You can contact our community manager Malvika Sharan by email at msharan@turing.ac.uk. Alternatively, you can contact the lead investigator Kirstie Whitaker by email at kwhitaker@turing.ac.uk.

Contributors

Thanks goes to these wonderful people (emoji key):


Rachael Ainsworth

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Tarek Allam

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Tania Allard

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Diego Alonso Alvarez

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Bouwe Andela

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Kristijan Armeni

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Becky Arnold

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Dimitra Blana

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Louise Bowler

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Alex Clarke

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Jez Cope

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Eric Daub

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Stephan Druskat

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Elizabeth DuPre

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Stephen Eglen

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Joe Fennell

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Oliver Forrest

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Pooja Gadige

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Jason Gates

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Sarah Gibson

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Oscar Giles

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Richard Gilham

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Cassandra Gould van Praag

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Michael Grayling

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Nomi Harris

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Liberty Hamilton

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Tim Head

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Patricia Herterich

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Rosie Higman

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Ian Hinder

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Hieu Hoang

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Dan Hobley

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Chris Holdgraf

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Will Hulme

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James Kent

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Greg Kiar

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Danbee Kim

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Anna Krystalli

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Kevin Kunzmann

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Mateusz Kuzak

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Eric Leung

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Clare Liggins

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Robin Long

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Christopher Lovell

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Frances Madden

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Eirini Malliaraki

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Chris Markiewicz

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Carlos Martinez

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Paula Andrea Martinez

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Lachlan Mason

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Rohit Midha

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Javier Moldon

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Beth Montague-Hellen

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Alexander Morley

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James Myatt

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Oliver Clark

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Martin O'Reilly

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Jade Pickering

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Camila Rangel Smith

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Rosti Readioff

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James Robinson

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Pablo RodrΓ­guez-SΓ‘nchez

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Susanna-Assunta Sansone

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Ali Seyhun Saral

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Chanuki Illushka Seresinhe

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Nadia Soliman

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Andrew Stewart

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Sarah Stewart

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Oliver Strickson

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Natalie Thurlby

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Gertjan van den Burg

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Stefan Verhoeven

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Kirstie Whitaker

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Tony Yang

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Yo Yehudi

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Eirini Zormpa

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Malvika Sharan

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Jim Madge

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Federico Nanni

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Evelina Gabasova

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Nick Barlow

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Radka Jersakova

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Nathan Begbie

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Esther Plomp

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Anna Hadjitofi

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Miguel Rivera

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Barbara Vreede

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Heidi Seibold

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Max Joseph

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Martina G. Vilas

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Laura Carter

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Victoria Dominguez del Angel

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Andrea PierrΓ©

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Graham Lee

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Mustafa Anil Tuncel

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Mark Woodbridge

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Chad Gilbert

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Frances Cooper

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Joanna Leng

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Colin Sauze

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Christina Hitrova

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Kesson Magid

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Arielle Bennett-Lovell

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Katherine Dixey

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NicolΓ‘s Alessandroni

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Alex Chan

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Neil Chue Hong

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Cameron Trotter

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Carlos Vladimiro GonzΓ‘lez Zelaya

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Pedro Pinto da Silva

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Sedar Olmez

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Rose Sisk

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Natacha Chenevoy

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Paul Dominick Baniqued

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Georgia Atkinson

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Tess Gough

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Annabel Elizabeth Whipp

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Sian Bladon

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Charlotte Watson

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Philip Darke

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Sparkler

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Yini

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Adina Wagner

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Georgiana Elena

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Enrico Glerean

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Wiebke Toussaint

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Danny Garside

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Shankho Boron Ghosh

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Yash Varshney

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Jay Dev Jha

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Jeremy Leipzig

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Pranav Mahajan

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Augustinas Sukys

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DerienFe

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Xiaoqing Chen

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takuover

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Srishti Nema

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Victoria

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mjcasy

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Aditi Shenvi

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ceciledebezenac

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tugceoruc

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vasilisstav

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acork25

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Joe Early

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Georgia Tomova

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swalkoAI

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giuliaok

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sethsh7

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Ferran Gonzalez Hernandez

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alessandroragano

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daniguariso

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kgrieman

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Siba Smarak Panigrahi

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Pierre Grimaud

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Sumera Priyadarsini

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sallyob123

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akira-endo

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Solon

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smasarone

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Risa Ueno

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l-gorman

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Obi Thompson Sargoni

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PeterC-ATI

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Oliver Hamelijnck

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Ismael-KG

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Tushar Rohilla

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Alex Bird

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Eric R Scott

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David Foster

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Markus LΓΆning

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Julien Colomb

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Samuel Nastase

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Raniere Silva

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Naomi Penfold

πŸ‘€ πŸ€”

This project follows the all-contributors specification. Contributions of any kind welcome!

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Host repository for The Turing Way: a how to guide for reproducible data science

https://the-turing-way.netlify.app

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