基于粒子滤波的超音速子弹状态估计

Toni Mäkinen, Pasi Pertilä, Pasi Auranen
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引用次数: 6

摘要

由于在世界各地不同的危机和安全威胁中,狙击手袭击的数量不断增加,因此需要新的技术和应用来帮助应对此类攻击。声源定位通常采用基于独立传声器间时差的声波到达方向(DOA)估计,本研究利用了该领域已有的研究成果。本文提出了一种估计超声速子弹状态的新方法。状态的定义包括子弹的轨迹,口径和速度。该方法基于子弹冲击波的数学模型,在贝叶斯推理的基础上建立参数估计过程。仿真和实际射击数据验证了该方法的有效性。将激波建模与贝叶斯推理相结合是研究的重点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Supersonic bullet state estimation using particle filtering
Due to an increasing number of sniper attacks in different crises and security threats around the world, there is a need for new technologies and applications to take place in helping to prepare against such offensives. Estimation of sound wave direction of arrival (DOA) based on time differences between separate microphones is typically applied for sound source localization, and the existing research achievements of the field are utilized in the presented study. In this paper, a new method for estimating the state of a supersonic bullet is proposed. State is defined here to consist of bullet's trajectory, caliber, and speed. The method is based on a mathematical modeling of the bullet shock wave, and the parameter estimation procedure is built over the Bayesian inference. Both simulations and real shooting data are used to test and verify the performance of the proposed method. Bringing shock wave modeling and Bayesian inference together is the main focus of the study.
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