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Classification of Childhood Diseases with Fever Using Fuzzy K-Nearest Neighbor Method

机译:使用模糊k最近邻法使用发烧的儿童疾病分类

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Fever or pyrexia is a condition when the body temperature rises above the average. This may occur due to viral or bacterial infection of the body. In addition, fever is the main symptom of diseases such as dengue fever, typhoid fever, diarrhea, gastroenteritis, measles, pneumonia, pharyngitis, and bronchitis. These diseases have similar symptoms, causing difficulty to distinguish them. In fact, the symptoms of diseases are usually recorded in a medical record document.Medical records can be categorized in order to ease diagnosis. The technique to categorize based on certain characteristics to several classes is called classification. Classification can categorize textual data which are first converted into numerical data so that the classification process can generate results. Fuzzy K-Nearest Neighbor is one classification technique that measures the distance between training and testing data, which then put them into a fuzzy set. This study developed a classification system for childhood diseases with fever using Fuzzy K-Nearest Neighbor based on textual medical record documents.The test results of the classification system showed an accuracy of 83.3% in the dengue fever and pneumonia data with a comparison of training and testing data of 80: 20, K value of 10, and M value of 2. Thus, it can be concluded that Fuzzy K-Nearest Neighbor classification system can be used as a solution to the classification of childhood diseases with fever.
机译:发烧或热脂肪是当体温高于平均值的条件。由于身体的病毒或细菌感染可能发生这种情况。此外,发烧是登革热,伤寒,腹泻,胃肠炎,麻疹,肺炎,咽炎和支气管炎等疾病的主要症状。这些疾病具有类似的症状,难以区分它们。事实上,疾病的症状通常记录在医疗记录文件中。可以对医疗记录进行分类,以便缓解诊断。基于某些类对几个类进行分类的技术称为分类。分类可以将首次转换为数字数据的文本数据,以便分类过程可以生成结果。模糊k最近邻是一种测量训练和测试数据之间的距离的分类技术,然后将它们放入模糊集中。本研究开发了一种基于文本医疗记录文件的模糊k最近邻居具有发烧的儿童疾病的分类系统。分类系统的测试结果表明登革热和肺炎数据的准确性为83.3%,训练和训练测试数据为80:20,k值10和m值为2.因此,可以得出结论,模糊k最近邻分类系统可以用作对儿童疾病的溶液进行发烧的溶液。

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