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Geometrical mapping of diseases with calculated similarity measure

机译:用计算的相似性度量对疾病进行几何映射

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Disease similarity is a useful measure that has potential application to various aspects of medicine. One such application is the mapping of diseases in a two-dimensional plane, which can be the foundation of a useful diagnostic reminder method called the “pivot and cluster strategy.” However, the mapping of diseases using a similarity measure has yet to be explored. This article investigates such a mapping, and quantifies its basic characteristics. We first collected mutual similarity data for 1,550 diseases using a machine learning approach. The calculated similarity data were then used to map the diseases using a “multidimensional scaling” algorithm. Quantitative analysis indicated that it is difficult to express all the diseases on the map and yet still show the similarity information between the items. Then, by restricting the input, the algorithm performed well in practice. To our knowledge, this is the first study to investigate the automated mapping of diseases on a plane for use in clinical practice.
机译:疾病相似性是一种有用的措施,在医学的各个方面都有潜在的应用。一种这样的应用是在二维平面上绘制疾病图,这可以成为有用的诊断提醒方法(称为“数据透视和聚类策略”)的基础。然而,使用相似性测度绘制疾病图尚待探索。本文研究了这种映射,并量化了其基本特征。我们首先使用机器学习方法收集了1,550种疾病的相互相似性数据。然后使用“多维缩放”算法将计算出的相似性数据用于绘制疾病图。定量分析表明,虽然很难在地图上表达所有疾病,但仍显示出项目之间的相似性信息。然后,通过限制输入,该算法在实践中表现良好。就我们所知,这是第一个研究在飞机上自动绘制疾病图谱以用于临床实践的研究。

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