arXiv · 2307.01918
Computational Reproducibility in Computational Social Science
Abstract
Replication crises have shaken the scientific landscape during the last decade. As potential solutions, open science practices were heavily discussed and have been implemented with varying success in different disciplines. We argue that computational-x disciplines such as computational social science, are also susceptible for the symptoms of the crises, but in terms of reproducibility. We expand the binary definition of reproducibility into a tier system which allows increasing levels of reproducibility based on external verfiability to counteract the practice of open-washing. We provide solutions for barriers in Computational Social Science that hinder researchers from obtaining the highest level of reproducibility, including the use of alternate data sources and considering reproducibility proactively.
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David Schoch, Chung-hong Chan, Claudia Wagner, Arnim Bleier. 2023-07-04. Computational Reproducibility in Computational Social Science. https://arxiv.org/abs/2307.01918
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