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Direct Localization of High-Order QAM Sources With Multiple Anchors: Dual Atomic Norm Minimization Framework
Journal article   Peer reviewed

Direct Localization of High-Order QAM Sources With Multiple Anchors: Dual Atomic Norm Minimization Framework

Xinlei Shi, Xiaofei Zhang, Jianfeng Li, Meng Sun, Tony Q. S. Quek and Hing Cheung So
IEEE transactions on wireless communications, Vol.25, pp.2843-2859
2026

Abstract

Accuracy direct localization Discrete Fourier transforms dual atomic norm minimization Location awareness Minimization Multiple sensor arrays OFDM QAM sources Quadrature amplitude modulation Robustness Sensor arrays Vectors Wireless communication
Direct localization (DL) of high-order quadrature amplitude modulation (QAM) sources is a pivotal challenge in wireless communications, particularly in environments characterized by complex multipath propagation and the presence of multiple sensor array-based anchors. This paper introduces a novel solution based on dual atomic norm minimization (DANM) framework that capitalizes on the fourth-order cumulant property of QAM signals to suppress Gaussian noise and expand the effective array aperture. Unlike traditional DL frameworks based on discrete Fourier transform (DFT) and spatial smoothing pre-processing (SSP) techniques, the proposed framework enhances localization accuracy and improves robustness against multipath effects. By framing the localization problem as a semidefinite program that utilizes dual atomic norm properties, our solution eliminates the need for prior knowledge of the number of sources and achieves a favorable balance between computational complexity and localization performance. Simulation results reveal that the DANM-based DL algorithm outperforms existing DFT- and SSP-based DL methods in terms of localization accuracy, with its root mean square error (RMSE) closely approaching the Cramér-Rao bound (CRB) even under challenging conditions. These findings underscore the potential of DANM in advancing high-precision DL for high-order QAM sources, thereby paving the way for more reliable and precise wireless communication systems.

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