在药物治疗风险管理风险共享协议中应用人工智能或机器学习
Grigory A Oborotov1, Konstantin A Koshechkin1, Yuriy L Orlov2,3
1Chair of Information and Internet Technologies, Digital Health Institute, I.M. Sechenov First Moscow State Medical University of the Ministry of Health of the Russian Federation (Sechenov University), Moscow, Russia.
人工智能 (AI) 可以在药物治疗中整合风险共享协议和机器学习,以控制不断上升的医疗保健成本. 这种方法使用神经网络来预测结果,并自动化风险共享协议,提高效率并降低治疗风险.
科学领域:
- 医疗信息学 医疗信息学
- 医疗保健中的人工智能
- 药物治疗 药物治疗
背景情况:
- 随着医疗保健成本的上升,需要创新的解决方案来管理开支,特别是在药品供应方面.
- 越来越需要先进的计算机技术来控制或减少医疗保健支出的升级.
研究的目的:
- 在药物治疗中探索风险共享协议和机器学习 (ML) 的整合.
- 利用人工智能 (AI) 来优化医疗保健成本管理和治疗结果.
主要方法:
- 讨论了风险分担协议和机器学习的结合,这是人工智能进步所实现的.
- 建议使用神经网络来预测治疗结果和识别风险因素.
- 突出了人工智能驱动的数据处理自动化,以简化风险共享协议.
主要成果:
- 确定了AI在药物治疗中将风险分担协议与ML合并的潜力.
- 神经网络可以预测治疗结果,从而减轻风险因素.
- 人工智能技术可以为风险共享协议自动化数据处理,提高效率.
结论:
- 人工智能,机器学习和风险共享协议的整合为控制医疗保健成本提供了一个有前途的战略.
- 人工智能驱动的预测分析和自动化可以显著提高药物治疗管理,减少相关风险.
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