Tensor decomposition-based 3D positioning with a single-antenna receiver in 5G millimetre wave systems

被引:1
|
作者
Dan, Zesheng [1 ]
Lian, Baowang [1 ]
Tang, Chengkai [1 ]
Xu, Haowei [1 ]
机构
[1] Northwestern Polytech Univ, YouYi West Rd 127, Xian, Peoples R China
关键词
matrix decomposition; 5G mobile communication; wireless channels; mean square error methods; array signal processing; compressed sensing; millimetre wave receivers; radio receivers; millimetre wave antenna arrays; time-of-arrival estimation; channel estimation; 5G mmWave systems; tensor decomposition-based 3D positioning; single-antenna receiver; 5G millimetre wave systems; three-dimensional positioning; millimetre-wave system; massive antenna arrays; fifth-generation base stations; high-precision positioning; single antenna; mmWave channel; compressed sensing-based algorithm; third-order low-rank tensor structure; CAMDECOMP; PARAFAC decomposition; Cramer-Rao bound; 5G base station; time of arrival; CHANNEL ESTIMATION; MIMO SYSTEMS; LOCALIZATION; EFFICIENCY; ENERGY; BOUNDS;
D O I
10.1049/iet-com.2019.1254
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Exploiting a single-antenna receiver to realise three-dimensional (3D) positioning in a millimetre-wave (mmWave) system is considered. The primary motivation is that the massive antenna arrays will be deployed in the fifth-generation (5G) base stations shortly soon, which not only tremendously promote the data transmission rate, but also enable the user equipment to realise high-precision positioning with a single antenna. Based on the sparsity of the mmWave channel, the tensor decomposition is proposed to be utilised as an effective mathematical tool to realise 3D positioning. Specifically, the authors model the received signals as a third-order tensor for the inherent third-order low-rank tensor structure of the mmWave channel with a single-antenna receiver and then, the positioning parameters (including the angles of departure and the time of arrival) are estimated from the corresponding factor matrices via CAMDECOMP/PARAFAC (CP) decomposition. Moreover, Cramer-Rao bounds (CRBs) on 3D position uncertainty are derived. Numerical results demonstrate that the proposed method based on CP decomposition realises nearly the same positioning accuracy as the state-of-the-art compressed sensing-based algorithm in the 5G mmWave systems with lower computation complexity, and the root mean square errors of the 3D positioning results obtained via the proposed approach are close to their CRBs.
引用
收藏
页码:3619 / 3630
页数:12
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