深度学习
人工智能
癌症
医学
机器学习
计算机科学
药品
抗癌药物
药物开发
癌症治疗
药物发现
人工神经网络
药物重新定位
精密医学
作者
Lei Li,Hongyu Zhang,Chunhou Zheng,Yansen Su
标识
DOI:10.1038/s44386-025-00034-1
摘要
Abstract Synergistic drug combinations enhance cancer treatment by improving efficacy and reducing toxicity. With advances in artificial intelligence and large-scale datasets, deep learning has become central to anti-cancer drug synergy prediction. This review summarizes classical and emerging deep learning models from single-task learning and multi-task learning perspectives, discusses data and technical challenges, and highlights future directions for advancing computational drug synergy prediction.
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