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Using Visual Analytics to Support the Integration of Expert Knowledge in the Design of Medical Models and Simulations

机译:使用视觉分析支持医学模型和模拟设计中专家知识的集成

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Visual analytics (VA) provides an interactive way to explore vast amounts of data and find interesting patterns. This has already benefited the development of computational models, as the patterns found using VA can then become essential elements of the model. Similarly, recent advances in the use of VA for the data cleaning stage are relevant to computational modelling given the importance of having reliable data to populate and check models. In this paper, we demonstrate via case studies of medical models that VA can be very valuable at the conceptual stage, to both examine the fit of a conceptual model with the underlying data and assess possible gaps in the model. The case studies were realized using different modelling tools (e.g., system dynamics or network modelling), which emphasizes that the relevance of VA to medical modelling cuts across techniques. Finally, we discuss how the interdisciplinary nature of modelling for medical applications requires an increased support for collaboration, and we suggest several areas of research to improve the intake and experience of VA for collaborative modelling in medicine.
机译:视觉分析(VA)提供了一种交互式方式来探索大量数据并找到有趣的模式。这已经有利于计算模型的开发,因为使用VA找到的模式随后可以成为模型的基本要素。类似地,鉴于使用可靠的数据来填充和检查模型的重要性,在数据清理阶段使用VA的最新进展与计算模型有关。在本文中,我们通过对医学模型的案例研究证明了VA在概念阶段非常有价值,既可以检查概念模型与基础数据的契合度,又可以评估模型中可能存在的差距。案例研究是通过使用不同的建模工具(例如系统动力学或网络建模)来实现的,这强调了VA与医学建模的相关性跨越了各种技术。最后,我们讨论了医学应用建模的跨学科本质如何需要对协作的更多支持,并且我们建议了一些研究领域来提高医学协作建模中VA的摄入量和体验。

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