JOURNAL ARTICLE

Approximate Capacity of Fast Fading Interference Channels With no Instantaneous CSIT

Joyson SebastianCan KarakusSuhas Diggavi

Year: 2018 Journal:   IEEE Transactions on Communications Vol: 66 (12)Pages: 6015-6027   Publisher: IEEE Communications Society

Abstract

We develop a characterization of fading models, which assigns a number called logarithmic Jensen's gap to a given fading model. We show that as a consequence of a finite logarithmic Jensen's gap, an approximate capacity region can be obtained for fast fading interference channels (FF-ICs) for several scenarios. We illustrate three instances where a constant capacity gap can be obtained as a function of the logarithmic Jensen's gap. First, for an FF-IC with neither feedback nor instantaneous channel state information at transmitter (CSIT), if the fading distribution has finite logarithmic Jensen's gap, we show that a rate-splitting scheme based on the average interference-to-noise ratio can achieve its approximate capacity. Second, we show that a similar scheme can achieve the approximate capacity of FF-IC with feedback and delayed CSIT, if the fading distribution has finite logarithmic Jensen's gap. Third, when this condition holds, we show that point-to-point codes can achieve approximate capacity for a class of FF-ICs with feedback. We prove that the logarithmic Jensen's gap is finite for common fading models, including Rayleigh and Nakagami fading, thereby obtaining the approximate capacity region of FF-IC with these fading models.

Keywords:
Fading Interference (communication) Channel capacity Channel state information Computer science Electronic engineering Fading distribution Telecommunications Channel (broadcasting) Algorithm Topology (electrical circuits) Engineering Electrical engineering Rayleigh fading Wireless

Metrics

6
Cited By
0.49
FWCI (Field Weighted Citation Impact)
39
Refs
0.67
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Advanced MIMO Systems Optimization
Physical Sciences →  Engineering →  Electrical and Electronic Engineering
Cooperative Communication and Network Coding
Physical Sciences →  Computer Science →  Computer Networks and Communications
Wireless Communication Security Techniques
Physical Sciences →  Engineering →  Electrical and Electronic Engineering

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