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Predicting diabetes with multivariate analysis an innovative KNN-based classifier approach

B. V. V. Siva Prasad, Sapna Gupta,Naiwrita Borah,R. Dineshkumar, Hitendra Kumar Lautre, B. Mouleswararao

Preventive medicine(2023)

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摘要
Diabetes seems to be a severe protracted disease or combination of biochemical disorders. A person's blood glucose (BG) levels remain elevated for an extended period because tissues lack and non-reaction to hormones. Such conditions are also causing longer-term obstacles or serious health issues. The medical field handles a large amount of very delicate data that must be handled properly. K-Nearest Neighbourhood (KNN) seems to be a common and straightforward ML method for creating illness threat prognosis models based on pertinent clinical information. We provide an adaptable neuro-fuzzy inference K-Nearest Neighbourhood (AF-KNN) learning-dependent forecasting system relying on patients' behavioural traits in several aspects to obtain our aim. That method identifies the best proportion of neighborhoods having a reduced inaccuracy risk to improve the pre-dicting performance of the final system.
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关键词
Machine learning (ML) techniques,K-nearest Neighbourhood (KNN),Adaptable fuzzified K-nearest Neighbourhood (AF-KNN),Diabetic prognosis
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