NDA maximum-likelihood waveform identification by model selection in digital modulations

J. López-Salcedo, G. Vazquez
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Abstract

In this paper, the problem of blind waveform identification of overlapped replicas is addressed. The proposed method departs from the unconditional maximum likelihood (UML) criterion and it makes use of the information regarding the signal subspace decomposition of the received signal. For the low-SNR regime, the paper shows that the UML criterion can be understood as a correlation matching approach in the transformed domain of the signal subspace. In addition, it is found that the initial set of unknowns is compressed into an smaller number of unknowns in this transformed domain. As a consequence, the solution space is reduced and the overall stability of the identification method is improved in front of the noise and possible ill-conditioned scenarios.
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数字调制中基于模型选择的NDA最大似然波形识别
本文研究了重叠副本的波形盲识别问题。该方法脱离了无条件极大似然准则,充分利用了接收信号的子空间分解信息。在低信噪比条件下,UML准则可以理解为信号子空间变换域的一种相关匹配方法。此外,还发现在变换后的域中,初始的未知集合被压缩为更少的未知集合。因此,在噪声和可能的病态情况下,减小了解空间,提高了识别方法的整体稳定性。
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