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Zhibin Jiang

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Jul 2026

A Hybrid Graph Convolutional Network and XGBoost Framework for miRNA–Disease Association Prediction

GCN-XGB is a novel hybrid computational framework that integrates a two-layer Graph Convolutional Network with Extreme Gradient Boosting to improve the accuracy of miRNA-disease association prediction and is suggested to be a powerful and reliable tool for identifying potential disease-related miRNAs and prioritizing candidates for experimental validation.

Jie Zhou, Peishen Yan, Jia Qu et al. · 0 citations