This paper proposes a reinforcement learning (RL)-aided cognitive framework for massive MIMO-based integrated sensing and communication (ISAC) systems employing a uniform planar array (UPA). The focus is on enhancing radar sensing performance in environments with unknown and dynamic disturbance characteristics. A Wald-type detector is employed for robust target detection under non-Gaussian clutter, while a SARSA-based RL algorithm enables adaptive estimation of target positions without prior environmental knowledge. Based on the RL-derived sensing information, a joint waveform optimization strategy is formulated to balance radar sensing accuracy and downlink communication throughput. The resulting design provides an adaptive trade-off between detection performance and achievable sum rate through an analytically derived closed-form solution. Monte Carlo simulations demonstrate that the proposed cognitive ISAC framework achieves significantly improved detection probability compared to orthogonal and non-learning adaptive baselines, while maintaining competitive communication performance. These results underline the potential of RL-assisted sensing for robust and spectrum-efficient ISAC in next-generation wireless networks.
@article{arxiv.2511.02672,
title = {RL-Aided Cognitive ISAC: Robust Detection and Sensing-Communication Trade-offs},
author = {Adam Umra and Aya M. Ahmed and Aydin Sezgin},
journal= {arXiv preprint arXiv:2511.02672},
year = {2025}
}
Comments
29 pages, 14 figures. Invited paper, submitted to the EURASIP Journal on Wireless Communications and Networking (JWCN)