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Quantum stochastic filters for nonlinear time-domain filtering of communication signals

机译:用于通信信号非线性时域滤波的量子随机滤波器

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摘要

Principles and performances of quantum stochastic filters are studied for nonlinear time-domain filtering of communication signals. Filtering is realized by combining neural networks with the nonlinear Schroedinger equation and the time-variant probability density function of signals is estimated by solution of the equation. It is shown that obviously different performances can be achieved by the control of weight coefficients of potential fields. Based on this characteristic, a novel filtering algorithm is proposed, and utilizing this algorithm, the nonlinear waveform distortion of output signals and the denoising capability of the filters can be compromised. This will make the application of quantum stochastic filters be greatly extended, such as in applying the filters to the processing of communication signals. The predominant performance of quantum stochastic filters is shown by simulation results.
机译:研究了用于通信信号非线性时域滤波的量子随机滤波器的原理和性能。通过将神经网络与非线性Schroedinger方程相结合来实现滤波,并通过方程的解来估计信号的时变概率密度函数。结果表明,通过控制势场的权重系数可以明显地实现不同的性能。基于该特性,提出了一种新颖的滤波算法,并利用该算法可以破坏输出信号的非线性波形失真和滤波器的去噪能力。这将使量子随机滤波器的应用大大扩展,例如将滤波器应用于通信信号的处理。仿真结果表明了量子随机滤波器的主要性能。

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