Crime Prediction Using Machine Learning and Deep Learning

P. Karthik, P. Jayanth, K. Tharun Nayak, K. Anil Kumar
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Abstract

The utilization of machine learning and deep learning methods for crime prediction has become a focal point for researchers, aiming to decipher the complex patterns and occurrences of crime. This review scrutinizes an extensive collection of over 150 scholarly articles to delve into the assortment of machine learning and deep learning techniques employed in forecasting criminal behaviour. It grants access to the datasets leveraged by researchers for crime forecasting and delves into the key methodologies utilized in these predictive algorithms. The study sheds light on the various trends and elements associated with criminal behaviour and underscores the existing deficiencies and prospective avenues for advancing crime prediction precision. This thorough examination of the current research on crime forecasting through machine learning and deep learning serves as an essential resource for scholars in the domain. A more profound comprehension of these predictive methods will empower law enforcement to devise more effective prevention and response strategies against crime.
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利用机器学习和深度学习进行犯罪预测
利用机器学习和深度学习方法进行犯罪预测已成为研究人员关注的焦点,其目的是破译犯罪的复杂模式和发生情况。本综述广泛收集了 150 多篇学术文章,深入探讨了在预测犯罪行为时使用的各种机器学习和深度学习技术。它提供了研究人员用于犯罪预测的数据集,并深入探讨了这些预测算法所采用的关键方法。该研究揭示了与犯罪行为相关的各种趋势和要素,并强调了现有的不足之处以及提高犯罪预测精度的前景。本研究对当前通过机器学习和深度学习进行犯罪预测的研究进行了深入探讨,是该领域学者的重要参考资料。更深入地了解这些预测方法将使执法部门有能力制定更有效的犯罪预防和应对策略。
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