Throughput of Cognitive Radio Systems with Finite Blocklength Codes
Gozde Ozcan, M. Cenk Gursoy

TL;DR
This paper analyzes the throughput of cognitive radio systems employing finite blocklength codes under buffer constraints, considering channel sensing, primary user activity, and channel state information to optimize data transmission strategies.
Contribution
It introduces a comprehensive model for cognitive radio throughput with finite blocklength codes, incorporating buffer constraints and channel sensing, and analyzes the tradeoffs involved.
Findings
Throughput depends on sensing duration and coding blocklength.
Buffer constraints significantly impact achievable throughput.
Perfect CSI allows rate adaptation for improved performance.
Abstract
In this paper, throughput achieved in cognitive radio channels with finite blocklength codes under buffer limitations is studied. Cognitive users first determine the activity of the primary users' through channel sensing and then initiate data transmission at a power level that depends on the channel sensing decisions. It is assumed that finite blocklength codes are employed in the data transmission phase. Hence, errors can occur in reception and retransmissions can be required. Primary users' activities are modeled as a two-state Markov chain and an eight-state Markov chain is constructed in order to model the cognitive radio channel. Channel state information (CSI) is assumed to be perfectly known by either the secondary receiver only or both the secondary transmitter and receiver. In the absence of CSI at the transmitter, fixed-rate transmission is performed whereas under perfect CSI…
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Taxonomy
TopicsCognitive Radio Networks and Spectrum Sensing · Advanced MIMO Systems Optimization · Wireless Communication Networks Research
