使用数据挖掘和机器学习方法分析犯罪威胁的比较研究

Puninder Kaur, G. Rani, Taruna Sharma, Avinash Sharma
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引用次数: 1

摘要

在过去的十年里,随着新技术的发展,犯罪率正在迅速上升。犯罪率分析与识别是当今世界各国减少非法活动的系统手段之一。因此,通过应用一些工具和技术来解决这些关键问题是IT领域面临的最大挑战。数据挖掘和机器学习方法是解决这一关键问题的有效和最佳方法之一。它提供了在适当的时候识别区域和罪犯的方法。本文主要着重介绍了各种机器学习算法,如K-means、SVM、A priori算法、CART算法、Fuzzy-C和FP树等,通过机器学习学习模式并与实际数据进行匹配。该过程用于对数据进行归一化处理,并删除所有异常,以提供更好的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Comparative Study to analyze crime threats using data mining and machine learning approach
In the last decade, with the development of new technologies crime rate is increasing rapidly. Nowadays, the crime rate analysis and identification is one of the systematic approaches to reduce the illegal activities in all around the world. Thus, this is the biggest challenge to the IT field to solve these critical issues by applying some tools and technologies. Data mining along with the machine learning approach is one of the efficient as well as best approaches to solve this critical issue. It provides the method to identify region and criminal in an appropriate time. In paper is basically emphasis on various machine learning algorithms such as K-means, SVM, A priori Algorithm, CART algorithms, Fuzzy-C and FP tree and machine learning is used to learn the pattern and matches it with actual data. This process is used to reduce the normalized the data and to delete all anomalies and provide better result.
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