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Impact of Swarm Intelligence Techniques in Diabetes Disease Risk Prediction

机译:群智能技术对糖尿病疾病风险预测的影响

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摘要

Diabetes has affected over 246 million people worldwide and by 2025 it is expected to rise to over 380 million. With the rise of information technology and its continued advent into the medical and healthcare sector, different symptoms of diabetes are being documented. The techniques inspired from the distributed collective behavior of social colonies have shown worth and excellence in dealing with complex optimization problems and are becoming more popular nowadays. It can be used as an effective problem solving tool for identifying diabetes disease risks. This paper aims at finding solutions to diagnose the disease by analyzing the patterns found in data through various swarm optimization techniques by employing Support Vector Machines and Naive Bayes algorithms. It proposes a quicker and more efficient technique of diagnosing the disease, leading to timely treatment of the patients.
机译:糖尿病已影响全球超过2.46亿人,到2025年,预计将增加到3.8亿。随着信息技术的兴起及其在医疗和保健领域的不断出现,人们记录了糖尿病的不同症状。从社会殖民地的分布式集体行为中获得启发的技术在处理复杂的优化问题方面已经显示出了价值和卓越,并在当今变得越来越流行。它可以用作识别糖尿病疾病风险的有效问题解决工具。本文旨在通过使用支持向量机和朴素贝叶斯算法,通过各种群体优化技术分析数据中发现的模式,找到诊断疾病的解决方案。它提出了一种更快,更有效的诊断疾病的技术,从而可以及时治疗患者。

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