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lamm-mit/Graph-Aware-Transformers

0
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70 stars·8 forks·Python·Apache-2.0·6 views

Graph Aware Transformers

We present an approach to enhancing Transformer architectures by integrating graph-aware relational reasoning into their attention mechanisms. Building on the inherent connection between attention and graph theory, we reformulate the Transformer’s attention mechanism as a graph operation and…

Features

  • Atomistic Machine Learning - Graph-aware attention for adaptive dynamics in transformers.

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Frequently asked questions

What does lamm-mit/graph-aware-transformers do?

We present an approach to enhancing Transformer architectures by integrating graph-aware relational reasoning into their attention mechanisms. Building on the inherent connection between attention and graph theory, we reformulate the Transformer’s attention mechanism as a graph operation and…

What are the main features of lamm-mit/graph-aware-transformers?

The main features of lamm-mit/graph-aware-transformers are: Atomistic Machine Learning.

What are some open-source alternatives to lamm-mit/graph-aware-transformers?

Open-source alternatives to lamm-mit/graph-aware-transformers include: atomistic-machine-learning/schnetpack — SchNetPack is a toolbox for the development and application of deep neural networks to the prediction of potential… awslabs/dgl-lifesci — Documentation | Discussion Forum. deepmodeling/uni-mol — Official Repository for the Uni-Mol Series Methods. lanl/hippynn — The hippynn python package - a modular library for atomistic machine learning with pytorch. learningmatter-mit/uvvisml — UVVisML [//]: # (Badges). atomistic-machine-learning/dtnn — Deep Tensor Neural Network.