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arXiv · 2501.06545

Energy-Aware Resource Allocation for Energy Harvesting Powered Wireless Sensor Nodes

Abstract

Low harvested energy poses a significant challenge to sustaining continuous communication in energy harvesting (EH)-powered wireless sensor networks. This is mainly due to intermittent and limited power availability from radio frequency signals. In this paper, we introduce a novel energy-aware resource allocation problem aimed at enabling the asynchronous accumulate-then-transmit protocol, offering an alternative to the extensively studied harvest-then-transmit approach. Specifically, we jointly optimize power allocation and time fraction dedicated to EH to maximize the average long-term system throughput, accounting for both data and energy queue lengths. By leveraging inner approximation and network utility maximization techniques, we develop a simple yet efficient iterative algorithm that guarantees at least a local optimum and achieves long-term utility improvement. Numerical results highlight the proposed approach's effectiveness in terms of both queue length and sustained system throughput.

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BibTeXRIS

Ngoc M. Ngo, Trung T. Nguyen, Phuc H. Nguyen, Van-Dinh Nguyen. 2025-01-11. Energy-Aware Resource Allocation for Energy Harvesting Powered Wireless Sensor Nodes. https://arxiv.org/abs/2501.06545

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