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Multimode waveguide speckle patterns for compressive sensing

机译:用于压缩感测的多模波导斑点图案

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Compressive sensing (CS) of sparse gigahertz-band RF signals using microwave photonics may achieve better performances with smaller size, weight, and power than electronic CS or conventional Nyquist rate sampling. The critical element in a CS system is the device that produces the CS measurement matrix (MM). We show that passive speckle patterns in multimode waveguides potentially provide excellent MMs for CS. We measure and calculate the MM for a multimode fiber and perform simulations using this MM in a CS system. We show that the speckle MM exhibits the sharp phase transition and coherence properties needed for CS and that these properties are similar to those of a sub-Gaussian MM with the same mean and standard deviation. We calculate the MM for a multimode planar waveguide and find dimensions of the planar guide that give a speckle MM with a performance similar to that of the multimode fiber. The CS simulations show that all measured and calculated speckle MMs exhibit a robust performance with equal amplitude signals that are sparse in time, in frequency, and in wavelets (Haar wavelet transform). The planar waveguide results indicate a path to a microwave photonic integrated circuit for measuring sparse gigahertz-band RF signals using CS. (C) 2016 Optical Society of America
机译:与电子CS或常规奈奎斯特速率采样相比,使用微波光子学的稀疏千兆赫兹级RF信号的压缩感测(CS)可以在较小的尺寸,重量和功率下实现更好的性能。 CS系统中的关键要素是产生CS测量矩阵(MM)的设备。我们表明,多模波导中的无源散斑图案可能为CS提供出色的MM。我们测量和计算多模光纤的MM,并在CS系统中使用该MM进行仿真。我们显示散斑MM展现出CS所需的尖锐的相变和相干特性,并且这些特性与具有相同均值和标准偏差的亚高斯MM相似。我们计算了多模平面波导的MM,并找到了平面散斑的尺寸,这些尺寸给出了散斑MM,其性能类似于多模光纤。 CS仿真显示,所有测量和计算的散斑MM均具有鲁棒的性能,并且在时间,频率和子波(Haar小波变换)等振幅信号均稀疏。平面波导结果表明了通向微波光子集成电路的路径,该电路用于使用CS测量稀疏的千兆赫兹带RF信号。 (C)2016美国眼镜学会

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