Sequential Decision Algorithms for Measurement-Based Impromptu Deployment of a Wireless Relay Network along a Line
Arpan Chattopadhyay, Marceau Coupechoux, and Anurag Kumar

TL;DR
This paper develops and compares sequential decision algorithms for impromptu wireless relay deployment along a line, introducing optimal policies and model-free learning algorithms that outperform simple heuristics.
Contribution
It formulates the deployment problem as a Markov decision process and derives optimal policies for both pure as-you-go and explore-forward approaches, including practical learning algorithms.
Findings
Explore-forward significantly outperforms pure as-you-go.
Learning algorithms converge to optimal policies without prior model knowledge.
Numerical results demonstrate practical convergence speeds.
Abstract
We are motivated by the need, in some applications, for impromptu or as-you-go deployment of wireless sensor networks. A person walks along a line, starting from a sink node (e.g., a base-station), and proceeds towards a source node (e.g., a sensor) which is at an a priori unknown location. At equally spaced locations, he makes link quality measurements to the previous relay, and deploys relays at some of these locations, with the aim to connect the source to the sink by a multihop wireless path. In this paper, we consider two approaches for impromptu deployment: (i) the deployment agent can only move forward (which we call a pure as-you-go approach), and (ii) the deployment agent can make measurements over several consecutive steps before selecting a placement location among them (which we call an explore-forward approach). We consider a light traffic regime, and formulate the problem…
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Taxonomy
TopicsEnergy Efficient Wireless Sensor Networks · Energy Harvesting in Wireless Networks · Mobile Ad Hoc Networks
