A Novel Descriptor and Molecular Graph-Based Bimodal Contrastive Learning Framework for Drug Molecular Property Prediction

被引:0
|
作者
He, Zhengda [1 ,2 ]
Chen, Linjie [2 ]
Lv, Hao [2 ]
Zhou, Rui-ning [2 ]
Xu, Jiaying [2 ]
Chen, Yadong [2 ]
Hu, Jianhua [2 ]
Gao, Yang [1 ]
机构
[1] Nanjing Univ, Nanjing, Jiangsu, Peoples R China
[2] China Pharmaceut Univ, Nanjing, Jiangsu, Peoples R China
来源
ADVANCED INTELLIGENT COMPUTING TECHNOLOGY AND APPLICATIONS, ICIC 2023, PT III | 2023年 / 14088卷
基金
美国国家科学基金会; 中国国家自然科学基金;
关键词
Molecular Property Prediction; Graph Neural Networks; Molecular Descriptors; Molecular Contrastive Learning; Drug Discovery;
D O I
10.1007/978-981-99-4749-2_60
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
In AI drug discovery, molecular property prediction is critical. Two main molecular representation methods in molecular property prediction models, descriptor-based and molecular graph-based, offer complementary information, but face challenges like representation conflicts and training imbalances when combined. To counter these issues, we propose a two-stage training process. The first stage employs a self-supervised contrastive learning scheme based on descriptors and graph representations, which pre-trains the encoders for the two modal representations, reducing bimodal feature conflicts and promoting representational consistency. In the second stage, supervised learning using target attribute labels is applied. Here, we design a multi-branch predictor architecture to address training imbalances and facilitate decision fusion. Our method, compatible with various graph neural network modules, has shown superior performance on most of the six tested datasets.
引用
收藏
页码:700 / 715
页数:16
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