雾模式下的作业调度——上下文感知任务调度算法的一种建议

Celestino Barros, Vítor Rocio, A. Sousa, Hugo Paredes
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引用次数: 2

摘要

根据作者的认识,雾模式下的任务调度是一个非常复杂的问题,文献中对它的研究还很少。在云架构中,它被广泛研究,在许多研究中,它是从服务提供商的角度来处理的。为了在这些领域做出创新的贡献,本文提出了一种雾范式中上下文感知任务调度问题的解决方案。在我们的建议中,不同的上下文参数通过最小最大归一化进行归一化,通过应用多元线性回归(MLR)技术定义请求优先级,并使用多目标非线性规划优化(MONLIP)技术执行调度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Job Scheduling in Fog Paradigm - A Proposal of Context-aware Task Scheduling Algorithms
According to the author’s knowledge task scheduling in fog paradigm is highly complex and in the literature there are still few studies on it. In the cloud architecture, it is widely studied and in many researches, it is approached from the perspective of service providers. Trying to bring innovative contributions in these areas, in this paper, we propose a solution to the context-aware task-scheduling problem for fog paradigm. In our proposal, different context parameters are normalized through Min Max normalization, requisition priorities are defined through the application of the Multiple Linear Regression (MLR) technique and scheduling is performed using Multi-Objective Non-Linear Programming optimization (MONLIP) technique.
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