Applications of sparse approximation in communications

A. Gilbert, J. Tropp
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引用次数: 30

Abstract

Sparse approximation problems abound in many scientific, mathematical, and engineering applications. These problems are defined by two competing notions: we approximate a signal vector as a linear combination of elementary atoms and we require that the approximation be both as accurate and as concise as possible. We introduce two natural and direct applications of these problems and algorithmic solutions in communications. We do so by constructing enhanced codebooks from base codebooks. We show that we can decode these enhanced codebooks in the presence of Gaussian noise. For MIMO wireless communication channels, we construct simultaneous sparse approximation problems and demonstrate that our algorithms can both decode the transmitted signals and estimate the channel parameters
稀疏逼近在通信中的应用
稀疏逼近问题在许多科学、数学和工程应用中大量存在。这些问题是由两个相互竞争的概念定义的:我们将信号向量近似为基本原子的线性组合,我们要求近似尽可能准确和简洁。我们介绍了这些问题和算法解决方案在通信中的两个自然和直接的应用。我们通过从基础码本构建增强码本来实现这一点。我们证明了我们可以在存在高斯噪声的情况下解码这些增强码本。对于MIMO无线通信信道,我们构造了同时稀疏逼近问题,并证明了我们的算法既可以解码传输信号,又可以估计信道参数
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