Performance characterization of matched subspace detector for spectrum sensing

Astha Sharma
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Abstract

Matched Subspace Detector (MSD) is a robust detection scheme used for detection of the target primary user signal buried in high-dimensional noise where the target signal is assumed to be placed in low-rank subspace. In this paper we attempt to present the benefits of MSD detector by providing the performance comparison with some other existing blind signal detection techniques and further confirmed detector performance on varying signal dimension and false alarm probabilities. For the scenario when the subspace estimation is done from finite, noisy, signal-bearing training data we propose to use information theoretic criteria (ITC) which highlights the importance of using a critical number of informative components which depends on training phase SNR, system dimension and number of training samples.
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频谱感知匹配子空间检测器的性能表征
匹配子空间检测器(MSD)是一种鲁棒检测方案,用于检测隐藏在高维噪声中的目标主用户信号,假设目标信号处于低秩子空间中。本文通过与现有盲信号检测技术的性能比较,展示了MSD检测器的优点,并进一步证实了该检测器在不同信号维数和虚警概率下的性能。对于从有限的、有噪声的、含信号的训练数据进行子空间估计的情况,我们建议使用信息理论准则(ITC),它强调了使用关键数量的信息成分的重要性,这取决于训练阶段的信噪比、系统维数和训练样本的数量。
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