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Preprocessing Design in Pyroelectric Infrared Sensor-Based Human-Tracking System: On Sensor Selection and Calibration

机译:基于热释电红外传感器的人体跟踪系统的预处理设计:关于传感器的选择和校准

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摘要

This paper presents an information-gain-based sensor selection approach as well as a sensor sensing probability model-based calibration process for multihuman tracking in distributed binary pyroelectric infrared sensor networks. This research includes three contributions: 1) choose the subset of sensors that can maximize the mutual information between sensors and targets; 2) find the sensor sensing probability model to represent the sensing space for sensor calibration; and 3) provide a factor graph-based message passing scheme for distributed tracking. Our approach can find the solution for sensor selection to optimize the performance of tracking. The sensing probability model is efficiently optimized through the calibration process in order to update the parameters of sensor positions and rotations. An application for mobile calibration and tracking is developed. Simulation and experimental results are provided to validate the proposed framework.
机译:本文提出了一种基于信息获取的传感器选择方法以及基于传感器传感概率模型的校准过程,用于分布式二进制热释电红外传感器网络中的多人跟踪。这项研究包括三个方面:1)选择能够最大化传感器与目标之间相互信息的传感器子集; 2)找到代表传感器标定的传感空间的传感器传感概率模型; 3)提供基于因子图的消息传递方案进行分布式跟踪。我们的方法可以找到传感器选择的解决方案,以优化跟踪性能。通过校准过程可有效优化感测概率模型,以便更新传感器位置和旋转的参数。开发了用于移动校准和跟踪的应用程序。提供仿真和实验结果以验证所提出的框架。

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