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Opening up Data Analysis for Medical Health Services: Cancer Survival Analysis with CARESS

机译:开放医疗保健服务的数据分析:CARESS的癌症生存分析

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Dealing with cancer is one of the big challenges of the German healthcare system. Originally, efforts regarding the analysis of cancer data focused on the detection of spatial clusters of cancer incidences. Nowadays, the emphasis also incorporates complex health services research and quality assurance. In 2013, a law was enacted in Germany forcing the spatially all-encompassing expansion of clinical cancer registries, each of them covering a commuting area of about 1 to 2 million inhabitants. Guidelines for a unified evaluation of data are currently in development, and it is very probable that these guidelines will demand the execution of comparative survival analyses. In this paper, we present how the CARLOS Epidemiological and Statistical Data Exploration System (CARESS), a sophisticated data warehouse system that is used by epidemiological cancer registries (ECRs) in several German federal states, opens up data analysis for a wider audience. We show that by applying the principles of integration and abstraction, CARESS copes with the challenges posed by the diversity of the cancer registry landscape in Germany. Survival estimates are calculated by the software package periodR seamlessly integrated in CARESS. We also discuss several performance optimizations for survival estimation, and illustrate the feasibility of our approach by an experiment on cancer survival estimation performance and by an example on the application of cancer survival analysis with CARESS.
机译:应对癌症是德国医疗体系的重大挑战之一。最初,有关癌症数据分析的工作集中于检测癌症发病率的空间簇。如今,重点还包括复杂的卫生服务研究和质量保证。 2013年,德国颁布了一项法律,强制在临床上扩大癌症登记的空间范围,每个登记处覆盖约1-2百万居民的通勤区域。目前正在制定统一评估数据的准则,这些准则很可能需要执行比较生存分析。在本文中,我们介绍了CARLOS流行病学和统计数据探索系统(CARESS),这是一个复杂的数据仓库系统,该系统已被德国多个联邦州的流行病学癌症注册表(ECR)使用,从而为广大受众打开了数据分析的大门。我们表明,通过应用整合和抽象的原则,CARESS可以应对德国癌症注册机构格局的多样性所带来的挑战。生存期估算是通过将CARR无缝集成在CARESS中来计算的。我们还讨论了一些用于生存估计的性能优化,并通过对癌症生存估计性能的实验以及以CARESS进行癌症生存分析的应用为例,说明了我们方法的可行性。

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