Achieving Arbitrary Throughput-Fairness Trade-offs in the Inter Cell Interference Coordination with Fixed Transmit Power Problem
Vaibhav Kumar Gupta, and Gaurav S. Kasbekar

TL;DR
This paper introduces a flexible fairness-throughput trade-off framework for inter cell interference coordination in OFDMA networks, proposing a new fairness concept, analyzing computational complexity, and presenting a distributed allocation algorithm.
Contribution
It proposes the $ au-eta$ fairness concept, analyzes its computational complexity, and develops a distributed subchannel allocation algorithm for ICIC.
Findings
The $ au-eta$ fairness allows arbitrary throughput-fairness trade-offs.
Optimal solutions are NP-Complete for general cases.
A polynomial-time solution exists under high interference thresholds.
Abstract
We study the problem of inter cell interference coordination (ICIC) with fixed transmit power in OFDMA-based cellular networks, in which each base station (BS) needs to decide as to which subchannel, if any, to allocate to each of its associated mobile stations (MS) for data transmission. In general, there exists a trade-off between the total throughput (sum of throughputs of all the MSs) and fairness under the allocations found by resource allocation schemes. We introduce the concept of fairness by modifying the concept of fairness, which was earlier proposed in the context of designing fair end-to-end window-based congestion control protocols for packet-switched networks. The concept of fairness allows us to achieve arbitrary trade-offs between the total throughput and degree of fairness by selecting an appropriate value of in…
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Taxonomy
TopicsCooperative Communication and Network Coding · Advanced Wireless Network Optimization · Advanced MIMO Systems Optimization
