Hypergame Theory for Decentralized Resource Allocation in Multi-user Semantic Communications
Christo Kurisummoottil Thomas, Walid Saad

TL;DR
This paper introduces a decentralized resource allocation framework for multi-user semantic communications using Stackelberg hyper game theory, effectively balancing communication and computing resources while accounting for user misperceptions.
Contribution
It develops a novel hypergame-theoretic approach for decentralized resource management in multi-user semantic communications, addressing misperceptions and convergence to equilibria.
Findings
Efficient resource usage demonstrated in simulations.
High quality user experience maintained.
Outperforms existing methods ignoring misperceptions.
Abstract
Semantic communications (SC) is an emerging communication paradigm in which wireless devices can send only relevant information from a source of data while relying on computing resources to regenerate missing data points. However, the design of a multi-user SC system becomes more challenging because of the computing and communication overhead required for coordination. Existing solutions for learning the semantic language and performing resource allocation often fail to capture the computing and communication tradeoffs involved in multiuser SC. To address this gap, a novel framework for decentralized computing and communication resource allocation in multiuser SC systems is proposed. The challenge of efficiently allocating communication and computing resources (for reasoning) in a decentralized manner to maximize the quality of task experience for the end users is addressed through the…
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Taxonomy
TopicsDistributed and Parallel Computing Systems · Distributed systems and fault tolerance · Cooperative Communication and Network Coding
