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Simulation of human micro-Doppler signatures with Kinect sensor

机译:使用Kinect传感器模拟人类微多普勒信号

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The availability and access to real radar data collected for targets with a desired characteristic is often limited by monetary and practical resources, especially in the case of airborne radar. In such cases, the generation of accurate simulated radar data is critical to the successful design and testing of radar signal processing algorithms. In the case of human micro-Doppler research, simulations of the expected target signature are required for a wide parameter space, including height, weight, gender, range, angle and waveform. The applicability of kinematic models is limited to just walking, while the use of motion capture databases is restricted to the test subjects and scenarios recorded by a third-party. To enable the simulation of human micro-Doppler signatures at will, this work exploits the inexpensive Kinect sensor to generate human spectrograms of any motion and for any subject from skeleton tracking data. The simulated spectrograms generated are statistically compared with those generated from high quality motion capture data. It is shown that the Kinect spectrograms are of sufficient quality to be used in simulation and classification of human micro-Doppler.
机译:对于具有所需特性的目标收集的可用性和访问对目标的真实雷达数据通常受货币和实用资源的限制,特别是在机载雷达的情况下。在这种情况下,精确模拟雷达数据的产生对于雷达信号处理算法的成功设计和测试至关重要。在人类微多普勒研究的情况下,宽参数空间需要模拟预期目标签名,包括高度,重量,性别,范围,角度和波形。运动模型的适用性仅限于步行,而运动捕获数据库的使用仅限于第三方记录的测试对象和场景。为了启用人类微多普勒签名的仿真,这项工作利用廉价的Kinect传感器来生成任何运动的人类谱图和来自骨架跟踪数据的任何主题。与从高质量运动捕获数据产生的那些相比,生成的模拟谱图。结果表明,Kinect谱图具有足够的质量,以用于人体微多普勒的仿真和分类。

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