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Intelligent visualization and exploration of time-oriented data of multiple patients

机译:智能可视化和探索多位患者的时间导向数据

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Objective: Clinicians and medical researchers alike require useful, intuitive, and intelligent tools to process large amounts of time-oriented multiple-patient data from multiple sources. For analyzing the results of clinical trials or for quality assessment purposes, an aggregated view of a group of patients is often required. To meet this need, we designed and developed the Visualization of Time-Oriented Records (VISITORS) system, which combines intelligent temporal analysis and information visualization techniques. The VISITORS system includes tools for intelligent retrieval, visualization, exploration, and analysis of raw time-oriented data and derived (abstracted) concepts for multiple patient records. To derive meaningful interpretations from raw time-oriented data (known as temporal abstractions), we used the knowledge-based temporal-abstraction method.rnMethods: The main module of the VISITORS system is an interactive, ontology-based exploration module, which enables the user to visualize raw data and abstract (derived) concepts for multiple patient records, at several levels of temporal granularity; to explore these concepts; and to display associations among raw and abstract concepts. A knowledge-based delegate function is used to convert multiple data points into one delegate value representing each temporal granule. To select the population of patients to explore, the VISITORS system includes an ontology-based temporal-aggregation specification language and a graphical expression-specification module. The expressions, applied by an external temporal mediator, retrieve a list of patients, a list of relevant time intervals, and a list of time-oriented patients' data sets, by using an expressive set of time and value constraints.rnResults: Functionality and usability evaluation of the interactive exploration module was performed on a database of more than 1000 oncology patients by a group of 10 users-five clinicians and five medical informaticians. Both types of users were able in a short time (mean of 2.5 ± 0.2 min per question) to answer a set of clinical questions, including questions that require the use of specialized operators for finding associations among derived temporal abstractions, with high accuracy (mean of 98.7 ± 2.4 on a predefined scale from 0 to 100). There were no significant differences between the response times and between accuracy levels of the exploration of the data using different time lines, i.e., absolute (i.e., calendrical) versus relative (referring to some clinical key event). A system usability scale (SUS) questionnaire filled out by the users demonstrated the VISITORS system to be usable (mean score for the overall group: 69.3), but the clinicians' usability assessment was significantly lower than that of the medical informaticians. Conclusions: We conclude that intelligent visualization and exploration of longitudinal data of multiple patients with the VISITORS system is feasible, functional, and usable.
机译:目的:临床医生和医学研究人员都需要有用,直观和智能的工具来处理来自多个来源的大量面向时间的多患者数据。为了分析临床试验的结果或出于质量评估的目的,通常需要一组患者的汇总视图。为了满足这一需求,我们设计并开发了面向时间的记录可视化(VISITORS)系统,该系统结合了智能的时间分析和信息可视化技术。 VISITORS系统包括用于智能检索,可视化,探索和分析原始的面向时间的数据以及用于多个患者记录的派生(抽象)概念的工具。为了从原始的面向时间的数据(称为时间抽象)中得出有意义的解释,我们使用了基于知识的时间抽象方法。rn方法:VISITORS系统的主要模块是基于本体的交互式探索模块,该模块可实现用户可以在多个时间粒度级别上可视化多个患者记录的原始数据和抽象(派生)概念;探索这些概念;并显示原始和抽象概念之间的关联。基于知识的委托函数用于将多个数据点转换为代表每个时间粒度的一个委托值。为了选择要探索的患者群体,VISITORS系统包括基于本体的时间聚集规范语言和图形表达规范模块。由外部时间介体应用的表达式通过使用一组具有表达力的时间和值约束来检索患者列表,相关时间间隔列表以及面向时间的患者数据集列表。交互式探索模块的可用性评估是由一组10位用户,5位临床医生和5位医学信息专家在1000多个肿瘤患者的数据库上进行的。两种类型的用户都可以在短时间内(每个问题平均2.5±0.2分钟)回答一组临床问题,包括需要使用专门的运算符以高精度找到派生的时间抽象之间的关联的问题(平均(从0到100的预设比例)上的98.7±2.4)。响应时间之间以及使用不同时间线(即绝对(即日历))相对(相对于某些临床关键事件)的数据探索的准确性水平之间没有显着差异。用户填写的系统可用性量表(SUS)问卷表明VISITORS系统可用(整个组的平均评分:69.3),但是临床医生的可用性评估明显低于医学信息专家。结论:我们得出结论,使用VISITORS系统对多名患者的纵向数据进行智能可视化和探索是可行,实用和可用的。

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