可靠的多模式癌症生存预测与信心意识风险建模
IEEE journal of biomedical and health informatics
|September 24, 2025
概括
这项研究介绍了ReCaSP,这是一个新的癌症生存预测框架,集成了组织学和转录学数据. 它通过估计预测信心和改进数据对齐以更好地预测患者来提高可靠性.
科学领域:
- 在瘤学瘤学.
- 生物信息学是一种生物信息学.
- 计算病理学计算病理学
背景情况:
- 综合组织学和转录学的多式生存分析对于癌症预后和个性化治疗至关重要.
- 现有的方法往往忽略了预测可靠性和模式之间的对齐噪声.
研究的目的:
- 开发一个可靠的癌症生存预测框架,ReCaSP,集成组织学和转录学数据.
- 为生存预测提供辅助信心水平,并解决对齐噪声.
主要方法:
- ReCaSP采用多式调整和融合组织学全幻灯片图像和转录组形状.
- 使用一种基于信任的风险建模机制,并使用使用证据深度学习的细粒度风险分类器.
- 一个交叉注意力对齐模块通过在融合之前对齐组织学和转录学数据来减轻噪音.
主要成果:
- 在五个数据集中,ReCaSP显著超过了最先进的方法.
- 该框架在整体C指数中实现了4.58%的改善.
- 它提供细粒度的风险预测与相关的信心评分.
结论:
- 通过整合多式联络数据,ReCaSP提供了一种可靠和准确的方法来预测癌症生存率.
- 该框架的信心估计和噪声减轻提高了临床适用性.
- 这种方法通过改善预后来推进个性化癌症治疗策略.
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