An Integrated Sensing and Communication System for Time-Sensitive Targets with Random Arrivals
Homa Nikbakht, Yonina C.Eldar, and H.Vincent Poor

TL;DR
This paper introduces a bi-static MIMO ISAC system for 6G networks that detects time-sensitive targets and prioritizes URLLC message delivery, using advanced coding and interference management to optimize performance under strict latency and reliability constraints.
Contribution
It proposes a novel DPC-based ISAC scheme that enhances eMBB throughput while ensuring URLLC reliability and target detection, outperforming traditional schemes.
Findings
DPC-based ISAC significantly improves eMBB rate.
The system effectively balances rate, reliability, and detection probability.
Outperforms power-sharing and time-sharing schemes in simulations.
Abstract
In 6G networks, integrated sensing and communication (ISAC) is envisioned as a key technology that enables wireless systems to perform joint sensing and communication using shared hardware, antennas and spectrum. ISAC designs facilitate emerging applications such as smart cities and autonomous driving. Such applications also demand ultra-reliable and low-latency communication (URLLC). Thus, an ISAC-enabled URLLC system can prioritize time-sensitive targets and ensure information delivery under strict latency and reliability constraints. We propose a bi-static MIMO ISAC system to detect the arrival of URLLC messages and prioritize their delivery. In this system, a base station (BS) communicates with a user equipment (UE) and a sensing receiver (SR) is deployed to collect echo signals reflected from a target of interest. The BS regularly transmits messages of enhanced mobile broadband…
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Taxonomy
TopicsDistributed Sensor Networks and Detection Algorithms · Advanced Research in Systems and Signal Processing · Advanced Frequency and Time Standards
