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Gunshot Classification from Single-channel Audio Recordings using a Divide and Conquer Approach

机译:使用分割和征服方法,从单通道音频录制的枪声分类

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Gunshot acoustic analysis is a field with many practical applications, but due to the multitude of factors involved in the generation of the acoustic signature of firearms, it is not a trivial task, especially since the recorded waveforms show a strong dependence on the shooter's position and orientation, even when firing the same weapon. In this paper we address acoustic weapon classification using pattern recognition techniques with single channel recordings while taking into account the spatial aspect of the problem, so departing from the typical approach. We are working with three broad categories: rifles, handguns and shotguns. Our approach is based on two proposals: a Divide and Conquer classification strategy and the inclusion of some novel features based on the physical model of gunshot acoustics. The Divide and Conquer strategy is aimed at improving the rate of success of the classification stage by using previously retrieved spatial information to select between a set of specialized weapon classifiers. The minimum relative error reduction achieved when both proposals are used, compared with a single-stage classifier employing traditional features is 38.7%.
机译:枪声声学分析是一个具有许多实际应用的领域,但由于枪支声学签名的众多因素,这不是一个琐碎的任务,特别是因为记录的波形显示出对射手的位置强烈依赖取向,即使在射击相同的武器时也是如此。在本文中,我们使用具有单通道录制的模式识别技术来解决原声武器分类,同时考虑到问题的空间方面,因此脱离了典型的方法。我们正在使用三个广泛类别:步枪,手枪和霰弹枪。我们的方法基于两项建议:除以基于枪声声学的物理模型的分类和征服分类策略和纳入一些新颖特征。除法和征服策略旨在通过使用先前检索的空间信息来改善分类阶段的成功率,以在一组专用武器分类器之间进行选择。使用两个提案时所达到的最小相对误差减少,与采用传统特征的单级分类器相比是38.7%。

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