Bounded CSI uncertainty; decentralized estimation; Gaussian CSI uncertainty; Internet of Things; multiple access channel; parameter estimation; quantization; robust transceiver design; Bounded channel state information uncertainty; Channel-state information; Decentralized estimation; Gaussian channel state information uncertainty; Gaussian channels; Multiple access channels; Parameters estimation; Quantisation; Robust transceiver designs; Uncertainty; Instrumentation; Electrical and Electronic Engineering
Abstract :
[en] This paper develop novel approaches for designing robust transceivers and energy covariance in an IoT network powered by energy harvesting. Our goal is to minimize the mean square error (MSE) at the fusion center (FC) while considering the uncertainty of channel state information (CSI). The proposed designs incorporate both Gaussian and bounded CSI uncertainty models to model the uncertainty in the CSI. Furthermore, two different optimal bit allocation scheme have been proposed for quantizing the measurements from each sensor node (SeN). However, solving the resulting MSE optimization problems with constraints on individual SeN power and total bit rate proves to be challenging due to their non-convex nature under both CSI uncertainty models. To address this challenge, we develop a block coordinate descent (BCD) based iterative framework. This framework leverages the block-convexity of the optimization objective and provides efficient solutions for both uncertainty paradigms considered. By making use of this analytical tractability, we obtain improved performance compared to the uncertainty-agnostic scheme that disregards CSI uncertainty. We validate our approach through numerical simulations, which not only support our analytical findings but also demonstrate the superior performance achieved with our method that accounts for CSI uncertainty.
Disciplines :
Electrical & electronics engineering
Author, co-author :
RAJPUT, Kunwar ; University of Luxembourg > Interdisciplinary Centre for Security, Reliability and Trust (SNT) > SPARC
Ahmed, Mohammad Faisal
Venkategowda, Naveen K. D.
Jagannatham, Aditya K.
Hanzo, Lajos
External co-authors :
yes
Language :
English
Title :
Robust Finite-Resolution Transceivers for Decentralized Estimation in Energy Harvesting Aided IoT Networks
Publication date :
06 October 2023
Journal title :
IEEE Sensors Journal
ISSN :
1530-437X
eISSN :
1558-1748
Publisher :
Institute of Electrical and Electronics Engineers Inc.