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Predicting outcomes in radiation oncology--multifactorial decision support systems

机译:预测放射肿瘤学的结果-多因素决策支持系统

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摘要

With the emergence of individualized medicine and the increasing amount and complexity of available medical data, a growing need exists for the development of clinical decision-support systems based on prediction models of treatment outcome. In radiation oncology, these models combine both predictive and prognostic data factors from clinical, imaging, molecular and other sources to achieve the highest accuracy to predict tumour response and follow-up event rates. In this Review, we provide an overview of the factors that are correlated with outcome-including survival, recurrence patterns and toxicity-in radiation oncology and discuss the methodology behind the development of prediction models, which is a multistage process. Even after initial development and clinical introduction, a truly useful predictive model will be continuously re-evaluated on different patient datasets from different regions to ensure its population-specific strength. In the future, validated decision-support systems will be fully integrated in the clinic, with data and knowledge being shared in a standardized, instant and global manner.
机译:随着个性化医学的出现以及可用医学数据的数量和复杂性的增加,越来越需要开发基于治疗结果预测模型的临床决策支持系统。在放射肿瘤学中,这些模型结合了来自临床,影像,分子和其他来源的预测和预后数据因素,以达到预测肿瘤反应和随访事件发生率的最高准确性。在这篇综述中,我们概述了与结局相关的因素,包括生存率,复发模式和放射肿瘤毒性,并讨论了预测模型开发的背后方法论,这是一个多阶段的过程。即使在最初的开发和临床引入之后,仍将在来自不同地区的不同患者数据集上不断重新评估一个真正有用的预测模型,以确保其特定人群的强度。将来,经过验证的决策支持系统将完全集成到诊所中,以标准化,即时和全球的方式共享数据和知识。

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