Title :
The Deterministic Time-Linearity of Service Provided by Fading Channels
Author :
Yunquan Dong ; Qing Wang ; Pingyi Fan ; Letaief, Khaled
Author_Institution :
Dept. of Electron. Eng., Tsinghua Univ., Beijing, China
fDate :
5/1/2012 12:00:00 AM
Abstract :
In the paper, we study the service process S(t) of an independent and identically distributed (i.i.d.) Nakagami-m fading channel, which is defined as the amount of service provided, i.e., the integral of the instantaneous channel capacity over time t. By using the Moment Generation Function (MGF) approach and the infinitely divisible law, it is proved that, other than certain generally recognized curve form or a stochastic process, the channel service process S(t) is a deterministic linear function of time t, namely, S(t)=cm* · t where cm* is a constant determined by the fading parameter m. Furthermore, we extend it to general i.i.d. fading channels and present an explicit form of the constant service rate cp*. The obtained work provides such a new insight on the system design of joint source/channel coding that there exists a coding scheme such that a receiver can decode with zero error probability and zero high layer queuing delay, if the transmitter maintains a constant data rate no more than cp*. Finally, we verify our analysis through Monte Carlo simulations.
Keywords :
Monte Carlo methods; Nakagami channels; channel capacity; combined source-channel coding; error statistics; queueing theory; stochastic processes; MGF approach; Monte Carlo simulations; channel service process; constant service rate; error probability; high-layer queuing delay; iid Nakagami-m fading channel; independent-identically distributed Nakagami-m fading channel; instantaneous channel capacity; joint source-channel coding; moment generation function approach; service deterministic time-linearity; stochastic process; Channel capacity; Random variables; Rayleigh channels; Receivers; Rician channels; Signal to noise ratio; Fading channels; Nakagami-m fading; channel service process; time linearity;
Journal_Title :
Wireless Communications, IEEE Transactions on
DOI :
10.1109/TWC.2012.030812.102276