基于机器学习的犯罪分析、预测与仿真平台

Isuru Herath, R. Dinalankara, Udaya Wijenayake
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引用次数: 0

摘要

犯罪作为一个全球性的社会经济问题,表现出与时空、社会经济和环境因素的复杂关联。了解犯罪的模式和相互作用对于更好地应对这些犯罪活动至关重要。本研究的重点是研究和开发犯罪分析、预测和模拟平台,该平台提供描述性分析、预测犯罪分析、基于强化学习的犯罪实体模拟和基于旧金山市犯罪数据的最安全路线导航服务。最终,拟议的犯罪分析、预测和模拟平台为政策制定者和安全官员提供了有关犯罪的根本原因和统计模式的关键信息,并为未来的犯罪预测提供了策略,以最大限度地减少犯罪。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Crime Analysis, Prediction and Simulation Platform Based on Machine Learning
As a global social-economical problem, crime has shown complex correlations with spatial-temporal, socio-economical, and environmental factors. Understanding patterns and interactions in the crimes is essential to prepare better to respond to those criminal activities. This study is focused on research and development of crime analysis, prediction and simulation platform that provides descriptive analysis, predictive crime analysis, Reinforcement learning based crime entity simulations and safest route navigation services based on crime data from the city of San Francisco. Ultimately, the proposed crime analysis, prediction and simulation platform provides critical information on root causes and statistical patterns of crime and future crime predictions for the policymakers and security officials to create strategies to minimise the crimes.
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