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Update best-of list for version 2024.08.19-13.22
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## 📈 Trending Up | ||
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_Projects that have a higher project-quality score compared to the last update. There might be a variety of reasons, such as increased downloads or code activity._ | ||
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- <b><a href="https://github.com/Materials-Consortia/optimade-python-tools">OPTIMADE Python tools</a></b> (🥇26 · ⭐ 64 · 📈) - Tools for implementing and consuming OPTIMADE APIs in Python. <code><a href="http://bit.ly/34MBwT8">MIT</a></code> | ||
- <b><a href="https://github.com/scikit-learn-contrib/scikit-matter">Scikit-Matter</a></b> (🥈19 · ⭐ 73 · 📈) - A collection of scikit-learn compatible utilities that implement methods born out of the materials science and.. <code><a href="http://bit.ly/3aKzpTv">BSD-3</a></code> <code>scikit-learn</code> | ||
- <b><a href="https://github.com/ziatdinovmax/gpax">gpax</a></b> (🥇18 · ⭐ 200 · 📈) - Gaussian Processes for Experimental Sciences. <code><a href="http://bit.ly/34MBwT8">MIT</a></code> <code>probabilistic</code> <a href="https://en.wikipedia.org/wiki/Active_learning_(machine_learning)"><code>active-learning</code></a> | ||
- <b><a href="https://github.com/dralgroup/mlatom">MLatom</a></b> (🥉13 · ⭐ 36 · 📈) - AI-enhanced computational chemistry. <code><a href="http://bit.ly/34MBwT8">MIT</a></code> <a href="https://www.google.com/search?q=universal+interatomic+potential"><code>UIP</code></a> <code>ML-IAP</code> <a href="https://en.wikipedia.org/wiki/Molecular_dynamics"><code>MD</code></a> <code>ML-DFT</code> <code>ML-ESM</code> <a href="https://en.wikipedia.org/wiki/Transfer_learning"><code>transfer-learning</code></a> <a href="https://en.wikipedia.org/wiki/Active_learning_(machine_learning)"><code>active-learning</code></a> <a href="https://en.wikipedia.org/wiki/Spectroscopy"><code>spectroscopy</code></a> <a href="https://www.psik2022.net/program/symposia#h.p_hM6hJbQD9dex"><code>structure-optimization</code></a> | ||
- <b><a href="https://github.com/aimat-lab/graph_attention_student">MEGAN: Multi Explanation Graph Attention Student</a></b> (🥉6 · ⭐ 5 · 📈) - Minimal implementation of graph attention student model architecture. <code><a href="http://bit.ly/34MBwT8">MIT</a></code> <a href="https://en.wikipedia.org/wiki/Feature_learning"><code>rep-learn</code></a> | ||
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## 📉 Trending Down | ||
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_Projects that have a lower project-quality score compared to the last update. There might be a variety of reasons such as decreased downloads or code activity._ | ||
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- <b><a href="https://github.com/janosh/matbench-discovery">MatBench Discovery</a></b> (🥈16 · ⭐ 82 · 📉) - An evaluation framework for machine learning models simulating high-throughput materials discovery. <code><a href="http://bit.ly/34MBwT8">MIT</a></code> <code>datasets</code> <code>benchmarking</code> <code>model-repository</code> | ||
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