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Multivariate Relational Visualization of Complex Clinical Datasets in a Critical Care Setting: A Data Visualization Interactive Prototype

机译:重症监护环境中复杂临床数据集的多元关系可视化:数据可视化交互式原型

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One mission of medical informatics is to provide physicians, nurses, and other health care providers with the technology and tools for interpreting large and diverse data sets, so that appropriate critical care decisions can be facilitated. Ideally, medical data visualization provides the means to transform data into information and contextual knowledge suitable for interpretation and decision-making [31, 9]. The authors propose a model through which data is organized into multivariate multidimensional critical care patient data visualizations (CPDV). It does this as the primary means to represent and manage complex contextbased patient data at various user-defined temporal resolutions. Furthermore, user-defined spatial organization of multiple (clinically related) datasets allows rapid visualization of significant trends that are related to several co-variables. Currently, anticipated findings from usability testing support the notion that the proposed model will facilitate medical decision making in a critical care environment.
机译:医学信息学的一项任务是为医生,护士和其他医疗保健提供者提供用于解释大型多样数据集的技术和工具,从而可以促进适当的重症监护决策。理想情况下,医学数据可视化提供了将数据转换为适合于解释和决策的信息和上下文知识的方法[31,9]。作者提出了一个模型,通过该模型可以将数据组织为多维多维重症监护患者数据可视化(CPDV)。它是作为以各种用户定义的时间分辨率表示和管理基于上下文的复杂患者数据的主要手段。此外,用户定义的多个(临床相关)数据集的空间组织允许快速可视化与几个协变量相关的重要趋势。当前,可用性测试的预期结果支持以下观点,即所提出的模型将有助于重症监护环境中的医疗决策。

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