DocumentCode
836662
Title
On Information Rates of Time-Varying Fading Channels Modeled as Finite-State Markov Channels
Author
Sadeghi, Parastoo ; Rapajic, Predrag
Author_Institution
Dept. of Inf. Eng., Australian Nat. Univ., Canberra, ACT
Volume
56
Issue
8
fYear
2008
fDate
8/1/2008 12:00:00 AM
Firstpage
1268
Lastpage
1278
Abstract
We study information rates of time-varying flat-fading channels (FFC) modeled as finite-state Markov channels (FSMC). FSMCs have two main applications for FFCs: modeling channel error bursts and decoding at the receiver. Our main finding in the first application is that receiver observation noise can more adversely affect higher-order FSMCs than lower-order FSMCs, resulting in lower capacities. This is despite the fact that the underlying higher-order FFC and its corresponding FSMC are more predictable. Numerical analysis shows that at low to medium SNR conditions (SNR lsim 12 dB) and at medium to fast normalized fading rates (0.01 lsim fDT lsim 0.10), FSMC information rates are non-increasing functions of memory order. We conclude that BERs obtained by low-order FSMC modeling can provide optimistic results. To explain the capacity behavior, we present a methodology that enables analytical comparison of FSMC capacities with different memory orders. We establish sufficient conditions that predict higher/lower capacity of a reduced-order FSMC, compared to its original high-order FSMC counterpart. Finally, we investigate the achievable information rates in FSMC-based receivers for FFCs. We observe that high-order FSMC modeling at the receiver side results in a negligible information rate increase for normalized fading rates fDT lsim 0.01.
Keywords
Markov processes; channel capacity; channel coding; error statistics; fading channels; radio receivers; time-varying channels; BER; channel decoding; channel error bursts; finite-state Markov channel capacity; information rates; receiver observation noise; time-varying flat-fading channels; Bit error rate; Decoding; Fading; Flexible electronics; Information analysis; Information rates; Numerical analysis; Signal to noise ratio; Sufficient conditions; Wireless communication;
fLanguage
English
Journal_Title
Communications, IEEE Transactions on
Publisher
ieee
ISSN
0090-6778
Type
jour
DOI
10.1109/TCOMM.2008.060622
Filename
4600177
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