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A CS Recovery Algorithm for Model and Time Delay Identification of MISO-FIR Systems

机译:用于MISO-FIR系统的模型和时延识别的CS恢复算法

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This paper considers identifying the multiple input single output finite impulse response (MISO-FIR) systems with unknown time delays and orders. Generally, parameters, orders and time delays of an MISO system are separately identified from different algorithms. In this paper, we aim to perform the model identification and time delay estimation simultaneously from a limited number of observations. For an MISO-FIR system with many inputs and unknown input time delays, the corresponding identification model contains a large number of parameters, requiring a great number of observations for identification and leading to a heavy computational burden. Inspired by the compressed sensing (CS) recovery theory, a threshold orthogonal matching pursuit algorithm (TH-OMP) is presented to simultaneously identify the parameters, the orders and the time delays of the MISO-FIR systems. The proposed algorithm requires only a small number of sampled data compared to the conventional identification methods, such as the least squares method. The effectiveness of the proposed algorithm is verified by simulation results.
机译:本文考虑识别具有未知时间延迟和阶数的多输入单输出有限冲激响应(MISO-FIR)系统。通常,从不同算法中分别识别出MISO系统的参数,顺序和时延。在本文中,我们旨在从有限数量的观测值中同时执行模型识别和时延估计。对于具有许多输入和未知输入延时的MISO-FIR系统,相应的识别模型包含大量参数,需要进行大量观察才能识别,并导致沉重的计算负担。受压缩感知(CS)恢复理论的启发,提出了一种阈值正交匹配追踪算法(TH-OMP),以同时识别MISO-FIR系统的参数,阶数和时延。与常规识别方法(例如最小二乘法)相比,该算法仅需要少量采样数据。仿真结果验证了所提算法的有效性。

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