Implementation of K-Means Algorithm with Distance of Euclidean Proximity in Clustering Cases of Violence Against Women and Children

Fitri Nuraeni, N. N. Febriani SM, Lina Listiani, Eka Rahmawati
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引用次数: 5

Abstract

Cases of violence that befell women and children in Tasikmalaya area are rampant, as well as low awareness of victims to follow up on their cases, it is necessary to recognize patterns in characteristics cases of violence that have ever existed. To obtain this pattern, data on cases violence was carried out on women and children using the clustering method, k-means algorithm, and using Euclidean proximity distance. The steps were taken following the CRIPS-DM model, starting from the process of understanding problem, understanding data, pre-processing data, modelling, evaluation, and pattern deployment. The results of this data extraction process are 4 clusters that have a DBI value of 0.657 and purity of 72%. To further facilitate the authorities cases of violence against women and children, an application was built using PHP programming language, MySQL as its database and software design methods using the waterfall model. With this application, it can be useful to facilitate the process of introducing further patterns of violence, so as to minimize emergence cases of violence against women and children in Tasikmalaya area.
基于欧氏接近距离的K-Means算法在暴力侵害妇女儿童案件聚类中的实现
发生在Tasikmalaya地区妇女和儿童身上的暴力案件十分猖獗,以及受害者对其案件的后续认识较低,有必要认识到曾经存在的暴力案件特征中的模式。为了获得这一模式,使用聚类方法、k-means算法和欧几里得接近距离对妇女和儿童的暴力案件数据进行了分析。步骤遵循CRIPS-DM模型,从理解问题、理解数据、预处理数据、建模、评估和模式部署的过程开始。该数据提取过程的结果为4个聚类,DBI值为0.657,纯度为72%。为了进一步方便当局处理针对妇女和儿童的暴力案件,使用PHP编程语言,MySQL作为数据库,采用瀑布模型的软件设计方法构建了一个应用程序。有了这一应用程序,它可以有助于促进引入进一步的暴力模式的进程,从而尽量减少在Tasikmalaya地区出现的针对妇女和儿童的暴力案件。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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