使用高效网和Yolo v3探测武器

Anthony Ortiz Ramon, L. Barba-Guaman
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引用次数: 0

摘要

仅占世界人口9%的拉丁美洲是世界上暴力发生率最高的地区之一,造成了不安全、犯罪、抢劫、武器和凶杀。在这个项目中,我们与物体检测合作,在商店、自动取款机、街道等公共场所检测各种类型的武器。在Google协作平台上对不同数据集和不同神经网络模型的几种训练进行了评估。使用Yolo v3和Efficient D0两种型号进行训练,使用四类枪械进行训练;手枪,冲锋枪,散弹枪和步枪。实验结果表明,Yolo v3是检测枪械的最佳网络,准确率为0.80 / 1。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Detection of weapons using Efficient Net and Yolo v3
With only 9% of the world's population, Latin America has one of the highest rates of violence in the world, generating insecurity, crime, robberies, weapons and homicides. In this project we worked with object detection to detect various types of weapons in public spaces such as stores, ATMs, streets, among others. Several trainings with different data sets and different neural network models were evaluated on the plataform Google colaboraty. Two models were used for training, Yolo v3 and Efficient D0, the models were trained with four categories of firearms; pistol, submachine gun, shotgun and rifle. The results of the experiments show that Yolo v3 is the best network for detecting firearms with an accuracy of 0.80 out of 1.
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