Optimal QoS-Aware Channel Assignment in D2D Communications with Partial CSI
Rui Wang, Jun Zhang, S.H. Song, Khaled B. Letaief

TL;DR
This paper introduces novel channel assignment algorithms for D2D-enabled cellular networks that optimize network utility under partial CSI, allowing multiple D2D links per channel and ensuring QoS, with proven effectiveness through simulations.
Contribution
It presents the first optimal and a cluster-based sub-optimal channel assignment algorithms considering partial CSI and QoS constraints in D2D communications.
Findings
Optimal DP-based algorithm outperforms exhaustive search in complexity.
Partial CSI of D2D and interference links critically impacts network performance.
Cluster-based algorithm achieves near-optimal results with lower complexity.
Abstract
In this paper, we propose effective channel assignment algorithms for network utility maximization in a cellular network with underlaying device-to-device (D2D) communications. A major innovation is the consideration of partial channel state information (CSI), i.e., the base station (BS) is assumed to be able to acquire `partial' instantaneous CSI of the cellular and D2D links, as well as, the interference links. In contrast to existing works, multiple D2D links are allowed to share the same channel, and the quality of service (QoS) requirements for both the cellular and D2D links are enforced. We first develop an optimal channel assignment algorithm based on dynamic programming (DP), which enjoys a much lower complexity compared to exhaustive search and will serve as a performance benchmark. To further reduce complexity, we propose a cluster-based sub-optimal channel assignment…
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Taxonomy
TopicsAdvanced MIMO Systems Optimization · Cooperative Communication and Network Coding · Advanced Wireless Network Optimization
