An Information-Theoretic Framework for Receiver Quantization in Communication
Jing Zhou, Shuqin Pang, and Wenyi Zhang

TL;DR
This paper develops an information-theoretic framework to analyze the impact of receiver quantization on communication rates, providing analytical expressions, optimal quantization strategies, and insights into performance trade-offs.
Contribution
It introduces a generalized mutual information approach to quantify rate loss due to quantization and characterizes optimal quantization and gain control strategies.
Findings
Rate loss due to quantization is $ ext{log}(1+ ext{SNR} imes ext{gamma})$.
Optimal gain control minimizes MSE and maximizes GMI, reducing rate loss.
Asymptotic analysis reveals how bias and loading factor affect performance.
Abstract
We investigate information-theoretic limits and design of communication under receiver quantization. Unlike most existing studies, this work is more focused on the impact of resolution reduction from high to low. We consider a standard transceiver architecture, which includes i.i.d. complex Gaussian codebook at the transmitter, and a symmetric quantizer cascaded with a nearest neighbor decoder at the receiver. Employing the generalized mutual information (GMI), an achievable rate under general quantization rules is obtained in an analytical form, which shows that the rate loss due to quantization is , where is determined by thresholds and levels of the quantizer. Based on this result, the performance under uniform receiver quantization is analyzed comprehensively. We show that the front-end gain control, which determines the loading factor…
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Taxonomy
TopicsAdvanced MIMO Systems Optimization · Advanced Wireless Communication Technologies · Advanced Wireless Communication Techniques
