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COMPRESSIVE SENSING SYSTEM AND METHOD FOR BEARING ESTIMATION OF SPARSE SOURCES IN THE ANGLE DOMAIN

机译:角域稀疏源压缩估计的系统和方法

摘要

Compressive Sensing (CS) is an emerging area which uses a relatively small number of non-traditional samples in the form of randomized projections to reconstruct sparse or com-pressible signals. Direction-of-arrival (DOA) estimation is performed with an array of sensors using CS. Using random projections of the sensor data, along with a full waveform recording on one reference sensor, a sparse angle space scenario can be reconstructed, giving the number of sources and their DOA's. Signal processing algorithms are also developed and described herein for randomly deployable wireless sensor arrays that are severely constrained in communication bandwidth. There is a focus on the acoustic bearing estimation problem and it is shown that when the target bearings are modeled as a sparse vector in the angle space, functions of the low dimensional random projections of the microphone signals can be used to determine multiple source bearings as a solution of an 1]-norm minimization problem.
机译:压缩传感(CS)是一个新兴领域,它使用相对少量的非传统样本以随机投影的形式来重建稀疏或可压缩信号。到达方向(DOA)估计是使用CS使用一系列传感器执行的。使用传感器数据的随机投影以及在一个参考传感器上记录的完整波形,可以重构稀疏角度的空间场景,给出源的数量及其DOA。本文还针对严重限制通信带宽的可随机部署的无线传感器阵列开发并描述了信号处理算法。人们关注的是声学方位估计问题,它表明,当将目标方位建模为角度空间中的稀疏矢量时,麦克风信号的低维随机投影函数可用于确定多个源方位。 1]范数最小化问题的解决方案。

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