Mismatch Analysis and Cooperative Calibration of Array Beam Patterns for ISAC Systems
Journal article, 2026

Integrated sensing and communication (ISAC) is a key technology for enabling a wide range of applications in future wireless systems. However, the sensing performance is often degraded by model mismatches caused by geometric errors (e.g., position and orientation) and hardware impairments (e.g., mutual coupling and amplifier non-linearity). This paper focuses on the angle estimation performance with antenna arrays and tackles the critical challenge of array beam pattern calibration for ISAC systems. To assess calibration quality from a sensing perspective, a novel performance metric that accounts for angle estimation error, rather than beam pattern similarity, is proposed and incorporated into a differentiable loss function. Additionally, a cooperative calibration framework is introduced, allowing multiple user equipments to iteratively optimize the beam pattern based on the proposed loss functions and local data, and collaboratively update global calibration parameters. The proposed models and algorithms are validated using real-world beam pattern measurements collected in an anechoic chamber. Experimental results show that the angle estimation error can be reduced from 1.01 degrees to 0.11 degrees in 2D calibration scenarios, and from 5.19 degrees to 0.86 degrees in 3D calibration scenarios.

Antennas

Patch antennas

Planar arrays

cooperative calibration

Antenna theory

mismatch analysis

Antennas and propagation

stochastic gradient descent

Antenna feeds

Phased arrays

array beam pattern

Apertures

Antenna arrays

ISAC

Adaptive arrays

Author

Hui Chen

Chalmers, Electrical Engineering, Communication, Antennas and Optical Networks

Mengting Li

Chalmers, Electrical Engineering, Communication, Antennas and Optical Networks

Alireza Pourafzal

Chalmers, Electrical Engineering, Communication, Antennas and Optical Networks

Huiping Huang

Chalmers, Electrical Engineering, Communication, Antennas and Optical Networks

Yu Ge

Chalmers, Electrical Engineering, Communication, Antennas and Optical Networks

Sigurd Sandor Petersen

Aalborg University

Ming Shen

Aalborg University

George C. Alexandropoulos

National and Kapodistrian University of Athens

Henk Wymeersch

Chalmers, Electrical Engineering, Communication, Antennas and Optical Networks

IEEE TRANSACTIONS ON WIRELESS COMMUNICATIONS

1536-1276 (ISSN) 1558-2248 (eISSN)

Vol. 25 16496-16511

6G DISAC

European Commission (EC) (101139130-6G-DISAC), 2024-01-01 -- 2026-12-31.

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European Commission (EC) (EU/HE/101207620), 2026-01-29 -- 2028-01-28.

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Swedish Research Council (VR) (2022-03007), 2023-01-01 -- 2026-12-31.

Areas of Advance

Transport

Subject Categories (SSIF 2025)

Communication Systems

Signal Processing

DOI

10.1109/TWC.2026.3687249

More information

Latest update

5/22/2026