TY - JOUR
T1 - Sensing-Then-Serve
T2 - A Novel Framework From ISAC Toward Sensing-Enhanced SWIPT
AU - Wu, Nan
AU - Li, Haoyang
AU - Jiang, Rongkun
AU - Su, Nanchi
AU - Zhang, Yunyang
AU - Yuan, Weijie
AU - You, Changsheng
N1 - Publisher Copyright:
© 1983-2012 IEEE. All rights reserved.
PY - 2026
Y1 - 2026
N2 - We study a two-phase, sensing-enhanced simultaneous wireless information and power transfer (SWIPT) framework for a multi-user system under position uncertainty. Phase-I dedicates a fraction of the frame to cooperative sensing that refines user positions; Phase-II performs SWIPT using the refined statistics. We define the information-energy (I-E) region to capture the fundamental tradeoff between sensing-induced enhancement and SWIPT duration, and then optimize it via bisection-based phase scheduling and robust beamforming. The sensing-induced enhancement is quantified by the derived closed-form Cramér-Rao Lower Bound (CRLB), and then optimized via a direction alignment water-filling procedure. For the SWIPT phase, we derive the ergodic capacity upper bound (ECUB) and the ergodic power havest (EPH) to characterize, respectively, the communication and power transfer efficiencies that harness the sensing enhancement. Accordingly, we devise a closed-form eigenbeamforming for power transfer; a quadratically constrained quadratic program (QCQP)-based beamforming for communication; and a QCQP-based beamforming with successive convex approximation (SCA) for SWIPT. Numerical results demonstrate substantial robustness and efficiency gains over conventional beamforming across a wide range of uncertainty levels.
AB - We study a two-phase, sensing-enhanced simultaneous wireless information and power transfer (SWIPT) framework for a multi-user system under position uncertainty. Phase-I dedicates a fraction of the frame to cooperative sensing that refines user positions; Phase-II performs SWIPT using the refined statistics. We define the information-energy (I-E) region to capture the fundamental tradeoff between sensing-induced enhancement and SWIPT duration, and then optimize it via bisection-based phase scheduling and robust beamforming. The sensing-induced enhancement is quantified by the derived closed-form Cramér-Rao Lower Bound (CRLB), and then optimized via a direction alignment water-filling procedure. For the SWIPT phase, we derive the ergodic capacity upper bound (ECUB) and the ergodic power havest (EPH) to characterize, respectively, the communication and power transfer efficiencies that harness the sensing enhancement. Accordingly, we devise a closed-form eigenbeamforming for power transfer; a quadratically constrained quadratic program (QCQP)-based beamforming for communication; and a QCQP-based beamforming with successive convex approximation (SCA) for SWIPT. Numerical results demonstrate substantial robustness and efficiency gains over conventional beamforming across a wide range of uncertainty levels.
KW - Pareto optimization
KW - Simultaneous wireless information and power transfer (SWIPT)
KW - integrated sensing and communication (ISAC)
KW - position uncertainty
KW - robust beamforming
UR - https://www.scopus.com/pages/publications/105043742819
U2 - 10.1109/JSAC.2026.3707847
DO - 10.1109/JSAC.2026.3707847
M3 - Article
AN - SCOPUS:105043742819
SN - 0733-8716
VL - 44
SP - 5222
EP - 5237
JO - IEEE Journal on Selected Areas in Communications
JF - IEEE Journal on Selected Areas in Communications
ER -