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Robust Task Offloading for IoT Fog Computing Under Information Asymmetry and Information Uncertainty

机译:在信息不对称和信息不确定性下,IOT FOG计算的强大任务卸载

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摘要

With the wide development of smart devices, fog computing has emerged as a promising solution to accommodate the ever-increasing computational demands in Internet of things (IoT). However, there are two major obstacles hindering the wide deployment of IoT fog computing, i.e., how to realize server recruitment under information asymmetry and reliable task assignment under information uncertainty. In this article, we develop a robust two-stage task offloading algorithm by integrating contract theory with computational intelligence. In the first stage, we propose a contract based server recruitment scheme to motivate servers to share residual computational resources. In the second stage, by leveraging multi-armed bandit (MAB), we develop a reliable volatile upper confidence bound (RV-UCB) algorithm to minimize the long-term delay of task assignment, which takes into account task awareness, occurrence awareness and location awareness. Finally, a series of stimulation results are carried out to validate the performance of the proposed algorithm.
机译:随着智能设备的广泛发展,雾计算已成为一个有希望的解决方案,以适应物联网(物联网)中不断增加的计算需求。但是,有两种主要障碍阻碍了IOT雾计算的广泛部署,即如何在信息不确定性下实现信息不对称和可靠的任务分配实现服务器招聘。在本文中,我们通过将合同理论与计算智能集成来开发一个强大的两阶段任务卸载算法。在第一阶段,我们提出基于合同的服务器招聘方案来激励服务器来共享残余计算资源。在第二阶段,通过利用多武装强盗(MAB),我们开发一种可靠的挥发性上置信度绑定(RV-UCB)算法,以最大限度地减少任务分配的长期延迟,这考虑了任务意识,发生意识和位置意识。最后,进行了一系列刺激结果以验证所提出的算法的性能。

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