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paddlehelix's Introduction

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Version python version support os

PaddleHelix is a machine-learning-based bio-computing framework aiming at facilitating the development of the following areas:

  • Vaccine design
  • Drug discovery
  • Precision medicine

Features

  • High Efficency: We provide LinearRNA, a highly efficient toolkit for RNA structure prediction and analysis. LinearFold & LinearParitition achieve O(n) complexity in RNA-folding prediction, which is hundreds of times faster than traditional folding techniques.

  • Large-scale Representation Learning and Transfer Learning: Self-supervised learning for molecule representations offers prospects of a breakthrough in tasks with limited annotation, including drug profiling, drug-target interaction, protein-protein interaction, RNA-RNA interaction, protein folding, RNA folding, and molecule design. PaddleHelix implements a variety of representation learning algorithms and state-of-the-art large-scale pre-trained models to help developers to start from "the shoulders of giants" quickly.

  • Easy-to-use APIs: PaddleHelix provides frequently used structures and pre-trained models. You can easily use those components to build up your models and systems.

Installation

The installation prerequisites and guide can be found here.


Documentation

Tutorials

  • We provide abundant tutorials to help you navigate the repository and start quickly.
  • PaddleHelix is based on PaddlePaddle, a high-performance Parallelized Deep Learning Platform.

Examples

The API reference

  • Detailed API reference of PaddleHelix can be found here.

Guide for developers

  • If you need help in modifying the source code of PaddleHelix, please see our Guide for developers.

paddlehelix's People

Contributors

xiaoyao4573 avatar worldeditors avatar superxiang avatar fairly avatar lihangliu avatar xueeinstein avatar noisyntrain avatar raindrops2sea avatar

Watchers

James Cloos avatar

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