A Fuzzy C-Means-Based Algorithm for the Surveillance of Dengue Cases Distribution in Local Communities

Jozelle C. Addawe, Jaime D. L. Caro, R. A. Juayong
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Abstract

The analysis of disease occurrence over the smallest unit of a region is critical in designing data-driven and targeted intervention plans to reduce health impacts in the population and prevent spread of disease. This study aims to characterize groups of local communities that exhibit the same temporal patterns in dengue occurrence using the Fuzzy C-means (FCM) algorithm for clustering spatiotemporal data and investigate its performance in clustering data on dengue cases aggregated yearly, monthly and weekly. In particular, this study investigates similar patterns of Dengue cases in 129 barangays of Baguio City, Philippines recorded over a period of 9 years. Results have shown that the FCM has promising results in grouping together time series data of barangays when using data that is aggregated weekly.
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基于模糊c均值的登革热病例分布监测算法
对一个区域最小单位的疾病发生情况进行分析,对于设计以数据为基础的、有针对性的干预计划,以减少对人口健康的影响和预防疾病传播至关重要。本研究旨在利用模糊c均值(FCM)算法对时空数据进行聚类,并研究其在登革热病例年、月和周数据聚类中的表现。特别地,本研究调查了菲律宾碧瑶市129个村9年来记录的登革热病例的类似模式。结果表明,当使用每周汇总的数据时,FCM在分组各村时间序列数据方面具有良好的效果。
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