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In-Flight Energy-Driven Composition of Drone Swarm Services

Authors :
Alkouz, Balsam
Abusafia, Amani
Lakhdari, Abdallah
Bouguettaya, Athman
Publication Year :
2022

Abstract

We propose a novel framework for swarm-based drone delivery services with in-flight energy recharging. The framework aims to enhance the delivery time of multiple packages by reducing the number of stops and recharging times at intermediate stations. The proposed framework considers various intrinsic and extrinsic delivery constraints. We propose to use support drones whose sole purpose is to recharge other drones in the swarm during their flight. In this respect, we compute the optimal set of optimal support drones to minimize the probability of delivery services and recharging time at the next stations. We also use two settings to position the support drones in a flight formation for comparative purposes. Two novel energy sharing methods are proposed, namely, Priority-based and Fairness-based methods. A re-ordering method of the delivery drones is presented to facilitate the in-flight energy composition process. An enhanced A* algorithm is implemented to compose the optimal services in terms of delivery time. Experimental results prove the efficiency of our proposed approach.<br />Comment: 15 pages, 12 figures. This is an accepted paper appearing in the IEEE Transactions on Services Computing (IEEE TSC)

Subjects

Subjects :
Computer Science - Robotics

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2210.17294
Document Type :
Working Paper