On Maximizing Task Throughput in IoT-Enabled 5G Networks Under Latency and Bandwidth Constraints

A. Pratap, Ragini Gupta, V. S. S. Nadendla, Sajal K. Das
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引用次数: 14

Abstract

Fog computing in 5G networks has played a significant role in increasing the number of users in a given network. However, Internet-of-Things (IoT) has driven system designers towards designing heterogeneous networks to support diverse demands (tasks with different priority values) with different latency and data rate constraints. In this paper, our goal is to maximize the total number of tasks served by a heterogeneous network, labeled task throughput, in the presence of data rate and latency constraints and device preferences regarding computational needs. Since our original problem is intractable, we propose an efficient solution based on graph-coloring techniques. We demonstrate the effectiveness of our proposed algorithm using numerical results, real-world experiments on a laboratory test-bed and comparing with the state-of-the-art algorithm.
时延和带宽限制下物联网5G网络任务吞吐量最大化研究
5G网络中的雾计算在增加给定网络中的用户数量方面发挥了重要作用。然而,物联网(IoT)促使系统设计者设计异构网络,以支持不同延迟和数据速率约束下的不同需求(具有不同优先级值的任务)。在本文中,我们的目标是在存在数据速率和延迟限制以及有关计算需求的设备偏好的情况下,最大化异构网络所服务的任务总数,标记为任务吞吐量。由于原始问题难以处理,我们提出了一种基于图着色技术的有效解决方案。我们使用数值结果、实验室试验台上的真实实验以及与最先进算法的比较来证明我们提出的算法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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