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Spectrogram-Based Methods for Human Identification in Single-Channel SAR Data

机译:基于频谱图的单通道SAR数据人类识别方法

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Radar offers unique advantages over other sensors, such as visual or seismic sensors, for human target detection and identification. Radar can operate far away from potential targets, and functions during the daytime as well as nighttime in virtually all weather conditions. In this paper, we examine the problem of human target detection and identification using single-channel synthetic aperture radar (SAR) data. A 12-point human model, together with kinematic equations of motion for each body part, is used to calculate the expected target return and spectrogram. The unique characteristics of the human spectrogram are analysed and used to design a prototype for an automated gender discrimination scheme. Simulation results show a 83.97% detection rate for males and 91.11% detection rate for females. Inherent deficiencies of spectrogram-based methods are discussed. Future work will focus on the development of an alternative solution for overcoming these deficiencies.
机译:雷达提供了与其他传感器(例如视觉或地震传感器)的独特优势,用于人类目标检测和识别。雷达可以远离潜在的目标,并且在白天以及几乎所有天气条件下的夜间功能。在本文中,我们使用单通道合成孔径雷达(SAR)数据来检查人体目标检测和识别问题。使用12点人的模型与每个身体部位的运动运动的运动方程一起用于计算预期的目标返回和谱图。分析了人类谱图的独特特征,并用于设计用于自动性别歧视方案的原型。仿真结果显示了63.97%的男性检出率和91.11%的女性检测率。讨论了基于谱图的方法的固有缺陷。未来的工作将侧重于开发克服这些缺陷的替代解决方案。

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