利用目标检测和机器学习算法从闭路电视中检测犯罪活动

Surbhi Singla, Raman Chadha
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引用次数: 0

摘要

现在,每个国家的犯罪率都在与日俱增。一般来说,每天我们都会听到不同类别的不同犯罪的新闻,如强奸、袭击、绑架、抢劫、自动取款机盗窃、谋杀等发生在不同的州、城市、国家。几乎所有的报纸、电视频道、社交媒体都充斥着世界各地发生的犯罪活动的新闻。早期没有侦查犯罪的方法。在那之后,闭路电视摄像机被用来侦查犯罪。但是在人工智能和机器学习的今天,人工观看这些视频来检测犯罪是一个非常耗时的过程,因此在CCTV监控中进行犯罪检测成为机器学习领域的一个重要研究领域。因此,迫切需要一种智能系统,它可以从实时闭路电视画面中发现犯罪并对其进行分类,并为最近的警察局和救护车等提供警报系统。因此,该系统将有助于降低任何国家的犯罪率。本文回顾了该领域所有先前的研究,包括物体识别和寻找优先帧的方法,用于检测犯罪的Yolo等技术和算法,本文介绍了犯罪数据分析和数据集训练的各种数据集和算法,涵盖了该领域的各种最新研究趋势,分析了所面临的挑战和各种研究差距,并讨论了如何克服这些研究差距,从而开发出更好的智能监控系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Detecting Criminal Activities From CCTV by using Object Detection and machine Learning Algorithms
Now, a day’s Crime in every country is increasing day by day. Generally, Every day we listen to the news of different crimes of different categories like rape, assault, Kidnapping ,Robbery ,ATM Theft, Murders etc happening in different states, cities , countries. Almost all the newspapers, TV channels’, social media are filled with the news of Criminal activities happening all around the Whole World. In earlier times there is no method to detect Crime. After That the CCTV cameras were used to detect Crimes. But Watching these Videos manually by humans for detecting crimes is a very time Consuming process especially in today’s world of Artificial Intelligence and Machine learning .So this crime detection in CCTV surveillance becomes an important area of research in the field of machine learning. So, there is a very urgent need of the intelligent system which will detect the crimes from the real time CCTV Feed and classify them and provides an alert system to the nearest police stations and ambulances etc. So, that system will help in reducing the crime rate in any country. This paper reviews all prior research in this area, including approaches for object recognition and finding priority frames, techniques and algorithms like Yolo used to detect crimes , various datasets used and algorithms used to analyze crime data and train the dataset .It covers the various recent trends in researches in this field and analyzing the challenges faced and various research gaps and this paper also discuss how we can overcome these gaps in research so as to develop a better intelligence surveillance system in ml field.
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