On the High-SNR Capacity of the Gaussian Interference Channel and New Capacity Bounds
Junyoung Nam

TL;DR
This paper introduces new capacity bounds for the Gaussian Interference Channel in the moderate interference regime, showing they are tighter than existing bounds and characterizing the capacity within a small gap at high SNR.
Contribution
The paper proposes a novel upper-bounding technique using noisy interference observations and time sharing, improving capacity bounds for the symmetric real GIC in the moderate interference regime.
Findings
New upper bounds are tighter than existing ones in certain regimes.
The symmetric real GIC capacity is characterized within 0.104 bits at moderate interference.
High-SNR capacity characterization matches the proposed bounds at specific interference levels.
Abstract
The best outer bound on the capacity region of the two-user Gaussian Interference Channel (GIC) is known to be the intersection of regions of various bounds including genie-aided outer bounds, in which a genie provides noisy input signals to the intended receiver. The Han and Kobayashi (HK) scheme provides the best known inner bound. The rate difference between the best known lower and upper bounds on the sum capacity remains as large as 1 bit per channel use especially around , where is the symmetric power constraint and is the symmetric real cross-channel coefficient. In this paper, we pay attention to the \emph{moderate interference regime} where . We propose a new upper-bounding technique that utilizes noisy observation of interfering signals as genie signals and applies time sharing to the genie signals at the receivers. A…
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Taxonomy
TopicsWireless Communication Security Techniques · Advanced MIMO Systems Optimization · Advanced Wireless Communication Techniques
