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On Map-Based Analysis of Item Relationships in Specific Health Examination Data for Subjects Possibly Having Diabetes

机译:基于地图的可能患有糖尿病的特定健康检查数据中项目关系的分析

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摘要

In this paper, we present a method of analyzing relationships between items in specific health examination data, as one of the basic researches to address increases of lifestyle-related diseases. We use self-organizing maps, and pick up the data from the examination dataset according to the condition specified by some item values. We then focus on twelve items such as hemoglobin A1c (HbA1c), aspartate transaminase (AST), alanine transaminase (ALT), gamma-glutamyl transpeptidase (γ-GTP), and triglyceride (TG). We generate training data presented to a map by calculating the difference between item values associated with successive two years and normalizing the values of this calculation. We label neurons in the map on condition that one of the item values of training data is employed as a parameter. We finally examine the relationships between items by comparing results of labeling (clusters formed in the map) to each other. From experimental results, we separately reveal the relationships among HbA1c, AST, ALT, γ-GTP and TG in the unfavorable case of HbA1c value increasing and those in the favorable case of HbA1c value decreasing.
机译:在本文中,我们提出一种分析特定健康检查数据中项目之间关系的方法,作为解决与生活方式有关的疾病增加的基础研究之一。我们使用自组织图,并根据某些项目值指定的条件从检查数据集中提取数据。然后,我们专注于十二个项目,例如血红蛋白A1c(HbA1c),天冬氨酸转氨酶(AST),丙氨酸转氨酶(ALT),γ-谷氨酰转肽酶(γ-GTP)和甘油三酸酯(TG)。我们通过计算与连续两年相关的项目值之间的差异并将此计算值标准化来生成呈现给地图的训练数据。我们将训练数据的项目值之一用作参数,在地图中标记神经元。最后,我们通过比较标记结果(在地图中形成的簇)来检查项目之间的关系。从实验结果中,我们分别揭示了在HbA1c值不利的情况下和在HbA1c值不利的情况下HbA1c,AST,ALT,γ-GTP和TG之间的关系。

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