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Fundamental Tradeoffs for ISAC Multiple Access in Finite-Blocklength Regime

Published: January 8, 2026 | arXiv ID: 2601.05165v1

By: Zhentian Zhang , Christos Masouros , Kai-Kit Wong and more

Potential Business Impact:

Makes phones sense and talk at once.

Business Areas:
Wireless Hardware, Mobile

This paper investigates the fundamental communication--sensing tradeoffs of uplink dual-functional integrated sensing and communication (ISAC) multiple access under finite blocklength (FBL) constraints. Unlike conventional asymptotic analyses, we explicitly account for the limitations under FBL constraints imposed by short packets and low-latency transmission. By examining the unbiased channel state sensing estimator, we establish a geometric decomposition of the sensing error, indicating that it is jointly determined by the signal-to-noise ratio and the correlation structure of the information codebook. This insight reveals how cross-correlation among active users in the codebook geometry fundamentally constrains dual-functional ISAC performance. Consequently, we derive achievability and converse bounds that characterize the tradeoff between communication code rate and sensing accuracy in the FBL regime, with the converse further bounded by Shannon capacity. Moreover, by treating channel state sensing as a high-level sensing objective, a universal Cramér--Rao bound is derived to link channel estimation accuracy to practical sensing parameters. Examples of parameter sensing are also provided based on 3GPP standard. Numerical results validate the theoretical analysis and demonstrate the impact of blocklength, antenna dimensions, and sensing requirements.

Country of Origin
🇬🇧 🇩🇪 Germany, United Kingdom

Page Count
6 pages

Category
Computer Science:
Information Theory