Hongjin Wu (Hongjinwu)

Hongjinwu

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Hongjin Wu's repositories

pinns-torch

PINNs-Torch, Physics-informed Neural Networks (PINNs) implemented in PyTorch.

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Book-Mathmatical-Foundation-of-Reinforcement-Learning

This is the homepage of a new book entitled "Mathmatical Foundations of Reinforcement Learning."

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D-GEX

Deep learning for gene expression inference

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deeplearning-biology

A list of deep learning implementations in biology

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deepvariant

DeepVariant is an analysis pipeline that uses a deep neural network to call genetic variants from next-generation DNA sequencing data.

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DLforGenomics

Review Paper: Deep Learning for Genomics: A Concise Overview

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GCNG

using graph convolutional neural network and spaital transcriptomics data to infer cell-cell interactions

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GNNPapers

Must-read papers on graph neural networks (GNN)

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Graph-Representation-Learning-Tutorial

Code for Data61's tutorial on Graph Representation Learning

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graphSAGE-pytorch

A PyTorch implementation of GraphSAGE. This package contains a PyTorch implementation of GraphSAGE.

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graphsage-simple

Simple reference implementation of GraphSAGE.

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molecular-VAE

Implementation of the paper - Automatic chemical design using a data-driven continuous representation of molecules

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neural-fingerprint

Convolutional nets which can take molecular graphs of arbitrary size as input.

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NGS-analysis

二代测序数据分析

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ORGAN

Objective-Reinforced Generative Adversarial Networks (ORGAN) for Sequence Generation Models

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papers_for_protein_design_using_DL

List of papers about Proteins Design using Deep Learning

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PINNpapers

Must-read Papers on Physics-Informed Neural Networks.

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progen

Official release of the ProGen models

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protein-bert-pytorch

Implementation of ProteinBERT in Pytorch

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pytorch-handbook

pytorch handbook是一本开源的书籍,目标是帮助那些希望和使用PyTorch进行深度学习开发和研究的朋友快速入门,其中包含的Pytorch教程全部通过测试保证可以成功运行

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REINVENT

Molecular De Novo design using Recurrent Neural Networks and Reinforcement Learning

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ShareBooks

ShareBooks

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SPRINT_gan

Privacy-preserving generative deep neural networks support clinical data sharing

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wae

Wasserstein Auto-Encoders

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