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A Bayesian Approach to Respiration Rate Estimation via Pulse-Based Ultra-Wideband Signals

机译:基于脉冲的超宽带信号呼吸速率估计的贝叶斯方法

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In this paper, theoretical limits on estimation of respiration rates via pulse-based ultra-wideband (UWB) signals are studied in the presence of prior information about respiration related signal parameters. First, a generalized Cramer-Rao lower bound (G-CRLB) expression is derived, and then simplified versions of the bound are obtained for sinusoidal displacement functions. In addition to the derivation of the theoretical limits, a two-step suboptimal estimator based on matched filter (correlation) processing and maximum a posteriori probability (MAP) estimation is proposed. It is shown that the proposed estimator performs very closely to the theoretical limits under certain conditions. Simulation results are presented to investigate the theoretical results.
机译:在本文中,在存在关于呼吸相关信号参数的先前信息的情况下,研究了通过基于脉冲的超宽带(UWB)信号估计呼吸速率的理论限制。首先,推导出广义克拉姆-RAO下限(G-CRLB)表达,然后获得符合的简化版本用于正弦位移函数。除了理论限制的推导之外,提出了一种基于匹配滤波器(相关性)处理和最大后验概率(MAP)估计的两步次优估计。结果表明,所提出的估计者在某些条件下非常密切地进行理论限制。提出了仿真结果来研究理论结果。

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