Distributed Space Time Coding for Wireless Two-way Relaying
Vijayvaradharaj T. Muralidharan, B. Sundar Rajan

TL;DR
This paper introduces a Distributed Space Time Coding scheme for wireless two-way relaying that reduces deep fade effects without needing channel state information at the transmitter or adaptive network coding, improving performance.
Contribution
It proposes a novel DSTC design criterion to minimize singular fade subspaces and maximize coding gain, with explicit low-complexity codes for QAM and PSK signals.
Findings
DSTC effectively mitigates deep fade conditions.
DSTC outperforms conventional XOR network coding at high SNR.
Proposed codes have low decoding complexity.
Abstract
We consider the wireless two-way relay channel, in which two-way data transfer takes place between the end nodes with the help of a relay. For the Denoise-And-Forward (DNF) protocol, it was shown by Koike-Akino et. al. that adaptively changing the network coding map used at the relay greatly reduces the impact of Multiple Access interference at the relay. The harmful effect of the deep channel fade conditions can be effectively mitigated by proper choice of these network coding maps at the relay. Alternatively, in this paper we propose a Distributed Space Time Coding (DSTC) scheme, which effectively removes most of the deep fade channel conditions at the transmitting nodes itself without any CSIT and without any need to adaptively change the network coding map used at the relay. It is shown that the deep fades occur when the channel fade coefficient vector falls in a finite number of…
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