TY - JOUR
T1 - Near-Field Integrated Sensing and Communication
T2 - SPEB Analysis and Hybrid Beamforming Design
AU - Yuan, Minghao
AU - He, Dongxuan
AU - Yuan, Weijie
AU - Yin, Hao
AU - Wang, Hua
N1 - Publisher Copyright:
© 2015 IEEE.
PY - 2026
Y1 - 2026
N2 - This paper investigates hybrid beamforming (HBF) design for near-field millimeter wave (mmWave) integrated sensing and communication (ISAC) systems, where one base station (BS) equipped with large-scale antenna array simultaneously serves multiple communication users and performs target localization by exploiting the degrees of freedom in both angle and distance domains. First, to characterize the target localization accuracy, we analyze the squared position error bound (SPEB) for estimating the two-dimensional (2D) position of target. Then, two HBF optimization problems are formulated to investigate the tradeoff between localization accuracy and communication rate. For the sensing-oriented optimization, we aim to minimize the SPEB of target localization while ensuring the communication rate requirements of individual users. To tackle this nonconvex problem, we propose a semidefinite relaxation (SDR)-based block coordinate descent (BCD) algorithm. For the communication-oriented optimization, a fractional programming (FP) and successive convex approximation (SCA)-based BCD algorithm is proposed to solve the sum-rate maximization problem under the SPEB constraint. The convergence and complexity analyses of the proposed algorithms are presented. Simulation results demonstrate that the proposed HBF algorithms can achieve localization accuracy and communication rate close to fully-digital beamforming and outperform the benchmark schemes.
AB - This paper investigates hybrid beamforming (HBF) design for near-field millimeter wave (mmWave) integrated sensing and communication (ISAC) systems, where one base station (BS) equipped with large-scale antenna array simultaneously serves multiple communication users and performs target localization by exploiting the degrees of freedom in both angle and distance domains. First, to characterize the target localization accuracy, we analyze the squared position error bound (SPEB) for estimating the two-dimensional (2D) position of target. Then, two HBF optimization problems are formulated to investigate the tradeoff between localization accuracy and communication rate. For the sensing-oriented optimization, we aim to minimize the SPEB of target localization while ensuring the communication rate requirements of individual users. To tackle this nonconvex problem, we propose a semidefinite relaxation (SDR)-based block coordinate descent (BCD) algorithm. For the communication-oriented optimization, a fractional programming (FP) and successive convex approximation (SCA)-based BCD algorithm is proposed to solve the sum-rate maximization problem under the SPEB constraint. The convergence and complexity analyses of the proposed algorithms are presented. Simulation results demonstrate that the proposed HBF algorithms can achieve localization accuracy and communication rate close to fully-digital beamforming and outperform the benchmark schemes.
KW - Integrated sensing and communication
KW - hybrid beamforming
KW - near-field
KW - squared position error bound
KW - target localization
UR - https://www.scopus.com/pages/publications/105014463676
U2 - 10.1109/TCCN.2025.3602802
DO - 10.1109/TCCN.2025.3602802
M3 - Article
AN - SCOPUS:105014463676
SN - 2332-7731
VL - 12
SP - 3511
EP - 3524
JO - IEEE Transactions on Cognitive Communications and Networking
JF - IEEE Transactions on Cognitive Communications and Networking
ER -