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Exploring Networked Airborne Computing: A Comprehensive Approach with Advanced Simulator and Hardware Testbed

San Diego State University, San Diego CA 92182, USA
University of California, San Diego La Jolla, CA 92093, USA
University of Texas at Arlington, Arlington TX 76019, USA
University of North Texas, Denton, TX 76201, USA
University of Puerto Rico at Mayagüez, Mayagüez 00681, Puerto Rico

This paper was recommended for publication inits revised form by Special Issue Editors, Junfei Xie, Yan Wan and Hao Liu.

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Abstract

In recent years, networked airborne computing (NAC) has emerged as a promising paradigm because it can leverage the collaborative capabilities of unmanned aerial vehicles (UAVs) for distributed computing tasks. Despite the burgeoning interests in NAC and UAV-based computing, many existing studies depend on over-simplified simulations for performance evaluation. This reliance has led to a gap in our understanding of NAC’s true potential and challenges. To fill this gap, this paper presents a comprehensive approach: the creation of a realistic simulator and a novel hardware testbed. The simulator, developed using ROS and Gazebo, emulates networked UAVs, focusing on resource-sharing and distributed computing capabilities. This tool offers a cost-effective, scalable, and adaptable environment, making it ideal for preliminary investigations across a myriad of real-world scenarios. In parallel, our hardware testbed comprises multiple quadrotors, each equipped with a Pixhawk control unit, a Raspberry Pi computing module, a real-time kinematic (RTK) positioning system, and multiple communication units. Through extensive simulations and hardware tests, we delve into the key determinants of NAC performance, such as computation task size, number of UAVs, communication quality, and UAV mobility. Our findings not only underscore the inherent challenges in optimizing NAC performance but also provide pivotal insights for future enhancements. These insights encompass refining the simulator, reducing computation overheads, and equipping the hardware testbed with cutting-edge communication devices.

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Unmanned Systems
Pages 545-562

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Cite this article:
Zhang H, Wang B, Wu R, et al. Exploring Networked Airborne Computing: A Comprehensive Approach with Advanced Simulator and Hardware Testbed. Unmanned Systems, 2024, 12(3): 545-562. https://doi.org/10.1142/S2301385024420056

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Received: 23 June 2023
Revised: 09 October 2023
Accepted: 09 October 2023
Published: 10 November 2023
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