UAV-enabled Computing Power Networks: Task Completion Probability Analysis

Fuente: arXiv
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Hauptverfasser: Deng, Yiqin, Fang, Zhengru, Hu, Senkang, Ma, Yanan, Zhang, Haixia, Fang, Yuguang
Format: Preprint
Veröffentlicht: 2025
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author Deng, Yiqin
Fang, Zhengru
Hu, Senkang
Ma, Yanan
Zhang, Haixia
Fang, Yuguang
author_facet Deng, Yiqin
Fang, Zhengru
Hu, Senkang
Ma, Yanan
Zhang, Haixia
Fang, Yuguang
contents This paper presents an innovative framework that synergistically enhances computing performance through ubiquitous computing power distribution and dynamic computing node accessibility control via adaptive unmanned aerial vehicle (UAV) positioning, establishing UAV-enabled Computing Power Networks (UAV-CPNs). In UAV-CPNs, UAVs function as dynamic aerial relays, outsourcing tasks generated in the request zone to an expanded service zone, consisting of a diverse range of computing devices, from vehicles with onboard computational capabilities and edge servers to dedicated computing nodes. This approach has the potential to alleviate communication bottlenecks in traditional computing power networks and overcome the "island effect" observed in multi-access edge computing. However, how to quantify the network performance under the complex spatio-temporal dynamics of both communication and computing power is a significant challenge, which introduces intricacies beyond those found in conventional networks. To address this, in this paper, we introduce task completion probability as the primary performance metric for evaluating the ability of UAV-CPNs to complete ground users' tasks within specified end-to-end latency requirements. Utilizing theories from stochastic processes and stochastic geometry, we derive analytical expressions that facilitate the assessment of this metric. Our numerical results emphasize that striking a delicate balance between communication and computational capabilities is essential for enhancing the performance of UAV-CPNs. Moreover, our findings show significant performance gains from the widespread distribution of computing nodes.
format Preprint
id arxiv_https___arxiv_org_abs_2512_15173
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle UAV-enabled Computing Power Networks: Task Completion Probability Analysis
Deng, Yiqin
Fang, Zhengru
Hu, Senkang
Ma, Yanan
Zhang, Haixia
Fang, Yuguang
Networking and Internet Architecture
This paper presents an innovative framework that synergistically enhances computing performance through ubiquitous computing power distribution and dynamic computing node accessibility control via adaptive unmanned aerial vehicle (UAV) positioning, establishing UAV-enabled Computing Power Networks (UAV-CPNs). In UAV-CPNs, UAVs function as dynamic aerial relays, outsourcing tasks generated in the request zone to an expanded service zone, consisting of a diverse range of computing devices, from vehicles with onboard computational capabilities and edge servers to dedicated computing nodes. This approach has the potential to alleviate communication bottlenecks in traditional computing power networks and overcome the "island effect" observed in multi-access edge computing. However, how to quantify the network performance under the complex spatio-temporal dynamics of both communication and computing power is a significant challenge, which introduces intricacies beyond those found in conventional networks. To address this, in this paper, we introduce task completion probability as the primary performance metric for evaluating the ability of UAV-CPNs to complete ground users' tasks within specified end-to-end latency requirements. Utilizing theories from stochastic processes and stochastic geometry, we derive analytical expressions that facilitate the assessment of this metric. Our numerical results emphasize that striking a delicate balance between communication and computational capabilities is essential for enhancing the performance of UAV-CPNs. Moreover, our findings show significant performance gains from the widespread distribution of computing nodes.
title UAV-enabled Computing Power Networks: Task Completion Probability Analysis
topic Networking and Internet Architecture
url https://arxiv.org/abs/2512.15173