DocumentCode :
1756947
Title :
Conditions for a Monotonic Channel Capacity
Author :
Agrell, Erik
Author_Institution :
Dept. of Signals & Syst., Chalmers Univ. of Technol., Göteborg, Sweden
Volume :
63
Issue :
3
fYear :
2015
fDate :
42064
Firstpage :
738
Lastpage :
748
Abstract :
Motivated by results in optical communications, where the performance can degrade dramatically if the transmit power is sufficiently increased, the channel capacity is characterized for various kinds of memoryless vector channels. It is proved that for all static point-to-point channels, the channel capacity under an equal-power constraint is a nondecreasing function of power. As a consequence, maximizing the mutual information over all input distributions with a certain power is for such channels equivalent to maximizing it over the larger set of input distributions with upperbounded power. The channel coding theorem is formally proved for an equal-power constraint. For interference channels such as optical wavelength-division multiplexing systems, the primary channel capacity is always nondecreasing with power if all interferers transmit with identical distributions as the primary user. Also, if all input distributions in an interference channel are optimized jointly, then the achievable sum-rate capacity is again nondecreasing. The results generalize to the channel capacity as a function of a wide class of costs, not only power.
Keywords :
channel capacity; channel coding; interference suppression; optical communication; wavelength division multiplexing; channel coding theorem; equal-power constraint; interference channel; memoryless vector channel; monotonic channel capacity; mutual information maximization; optical communication; optical wavelength-division multiplexing system; static point-to-point channel; Channel capacity; Channel coding; Channel models; Interference channels; Mutual information; Optical fiber communication; Vectors; Achievable rate; Shannon limit; capacity–cost function; capacity???cost function; channel capacity; mutual information; nonlinear distortion; optical communications;
fLanguage :
English
Journal_Title :
Communications, IEEE Transactions on
Publisher :
ieee
ISSN :
0090-6778
Type :
jour
DOI :
10.1109/TCOMM.2014.2381247
Filename :
6985572
Link To Document :
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