Title :
A channel representation method for the study of hybrid retransmission-based error control
Author :
Badia, Leonardo ; Levorato, Marco ; Zorzi, Michele
Author_Institution :
IMT Lucca Inst. for Adv. Studies, Lucca, Italy
fDate :
7/1/2009 12:00:00 AM
Abstract :
In this paper, we present a methodology to obtain a channel description tailored on performance evaluation for incremental redundancy hybrid automatic repeat request schemes. Such techniques counteract channel errors by using data coding and transmitting parts of the codeword over different channel realizations. We focus on coding performance models where the error probability is asymptotically zero if the channel parameters of these realizations fall within a given region. To map this region in a compact but still precise manner, we adopt a finite-state channel model. This approach is quite common in the literature; however, differently from existing work, we propose a novel method to derive efficient channel partitioning rules, i.e., a code-matched quantization of the channel state. Such a representation enables the use of accurate Markov models to study the system performance. Compared to existing channel representation methods, our proposed technique leads to a more accurate evaluation of higher layer statistics while at the same time keeping the computational complexity low.
Keywords :
Markov processes; automatic repeat request; channel coding; computational complexity; error statistics; Markov models; channel description; channel representation method; code-matched quantization; computational complexity; data coding; error probability; finite-state channel model; higher layer statistics; hybrid retransmission-based error control; incremental redundancy hybrid automatic repeat request schemes; Automatic repeat request; Error correction; Error correction codes; Error probability; Forward error correction; Maximum likelihood decoding; Parity check codes; Quantization; Region 7; Turbo codes; Channel coding, error correction, Markov processes, automatic repeat request, forward error correction, communication channels;
Journal_Title :
Communications, IEEE Transactions on
DOI :
10.1109/TCOMM.2009.07.070587