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Prediction of similarities among rheumatic diseases

机译:风湿性疾病之间的相似性预测

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We introduce a method for extracting hidden patterns seen in rheumatic diseases by using articles from the widely used biomedical database MEDLINE. Rheumatic diseases affect hundreds of millions of people worldwide and lead to substantial loss of functioning and mobility. Diagnosing rheumatic diseases can be difficult because some symptoms are common to many of them. We use Facta system as a biomedical text mining tool for finding symptoms and then create a dataset with the frequencies of symptoms for each disease and apply hierarchical clustering analysis to find similarities between diseases. Clustering analysis yields four distinct types or groups of rheumatic diseases. Although our results cannot remove all the uncertainty for the diagnosis of rheumatic diseases, we believe they can contribute to the diagnosis of rheumatic diseases to a certain extent. We hope that some similarities exposed can provide additional information at the stage of decision-making.
机译:我们介绍了一种方法,该方法通过使用来自广泛使用的生物医学数据库MEDLINE的文章来提取风湿病中常见的隐藏模式。风湿性疾病影响着全球数亿人,并导致其功能和活动能力严重丧失。风湿性疾病的诊断可能很困难,因为其中许多症状是某些症状共有的。我们使用Facta系统作为查找症状的生物医学文本挖掘工具,然后使用每种疾病的症状频率创建数据集,并应用层次聚类分析来发现疾病之间的相似性。聚类分析得出四种不同类型或组的风湿性疾病。尽管我们的结果不能消除风湿性疾病诊断的所有不确定性,但我们相信它们可以在一定程度上有助于风湿性疾病的诊断。我们希望所暴露的某些相似之处可以在决策阶段提供更多信息。

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