TDMA Achieves the Optimal Diversity Gain in Relay-Assisted Cellular Networks
Suzhi Bi, Ying Jun (Angela) Zhang

TL;DR
This paper demonstrates that in relay-assisted cellular networks, simple fixed TDMA scheduling can achieve the same optimal diversity gain and reliability as complex opportunistic schemes, balancing fairness and efficiency effectively.
Contribution
It reveals that in relay-assisted networks, fixed TDMA can match the diversity and reliability of opportunistic scheduling, challenging conventional wisdom.
Findings
TDMA achieves optimal diversity gain in relay-assisted networks.
Relaxed-TDMA asymptotically matches opportunistic scheduling in outage probability.
TDMA schemes can balance fairness and reliability without complexity.
Abstract
In multi-access wireless networks, transmission scheduling is a key component that determines the efficiency and fairness of wireless spectrum allocation. At one extreme, greedy opportunistic scheduling that allocates airtime to the user with the largest instantaneous channel gain achieves the optimal spectrum efficiency and transmission reliability but the poorest user-level fairness. At the other extreme, fixed TDMA scheduling achieves the fairest airtime allocation but the lowest spectrum efficiency and transmission reliability. To balance the two competing objectives, extensive research efforts have been spent on designing opportunistic scheduling schemes that reach certain tradeoff points between the two extremes. In this paper and in contrast to the conventional wisdom, we find that in relay-assisted cellular networks, fixed TDMA achieves the same optimal diversity gain as greedy…
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Taxonomy
TopicsCooperative Communication and Network Coding · Advanced MIMO Systems Optimization · Advanced Wireless Network Optimization
