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arXiv · 2607.21095

Sender and Receiver Energy Consumption in a Sensor Network

Abstract

We consider a new type of model with energy packets and data packets where the transmission of a data packet requires energy on both the sender and the receiver nodes. Energy packets is a discrete number of Joules representing the quantum of energy needed to send and receive a data packet. Both types of packets are stored in queues. The energy packet queue models a battery. Without energy on the sender, the emission is delayed until energy is available. When a sent packet arrives on a receiver which does not have enough energy, it is lost. This mechanism implies a new complex synchronization between several queues. Despite this complexity, we prove that under some classical assumptions the steady-state distribution of the Markov chain has a product form solution. We state sufficient conditions for ergodicity and we also prove the convergence and the correctness of a numerical algorithm to compute the values of the flows.

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BibTeXRIS

J M Fourneau, F. Quessette. 2026-07-23. Sender and Receiver Energy Consumption in a Sensor Network. https://arxiv.org/abs/2607.21095

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