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Binary Sparse Bayesian Learning Algorithm for One-bit Compressed Sensing

Published 8 May 2018 in cs.IT and math.IT | (1805.03043v1)

Abstract: In this letter, a binary sparse Bayesian learning (BSBL) algorithm is proposed to slove the one-bit compressed sensing (CS) problem in both single measurement vector (SMV) and multiple measurement vectors (MMVs). By utilising the Bussgang-like decomposition, the one-bit CS problem can be approximated as a standard linear model. Consequently, the standard SBL algorithm can be naturally incorporated. Numerical results demonstrate the effectiveness of the BSBL algorithm.

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