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An IoT-based task scheduling optimization scheme considering the deadline and cost-aware scientific workflow for cloud computing

机译:考虑云计算的截止日期和成本感知科学工作流程的基于物联网的任务调度优化方案

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摘要

Large-scale applications of Internet of things (IoT), which require considerable computing tasks and storage resources, are increasingly deployed in cloud environments. Compared with the traditional computing model, characteristics of the cloud such as pay-as-you-go, unlimited expansion, and dynamic acquisition represent different conveniences for these applications using the IoT architecture. One of the major challenges is to satisfy the quality of service requirements while assigning resources to tasks. In this paper, we propose a deadline and cost-aware scheduling algorithm that minimizes the execution cost of a workflow under deadline constraints in the infrastructure as a service (IaaS) model. Considering the virtual machine (VM) performance variation and acquisition delay, we first divide tasks into different levels according to the topological structure so that no dependency exists between tasks at the same level. Three strings are used to code the genes in the proposed algorithm to better reflect the heterogeneous and resilient characteristics of cloud environments. Then, HEFT is used to generate individuals with the minimum completion time and cost. Novel schemes are developed for crossover and mutation to increase the diversity of the solutions. Based on this process, a task scheduling method that considers cost and deadlines is proposed. Experiments on workflows that simulate the structured tasks of the IoT demonstrate that our algorithm achieves a high success rate and performs well compared to state-of-the-art algorithms.
机译:需要相当大的计算任务和存储资源的物联网(IoT)的大规模应用越来越多地部署在云环境中。与传统的计算模型相比,云等特点,如付费,无限扩张,动态采集,使用物联网架构代表了这些应用程序的不同便利。其中一个主要挑战是在为任务分配资源时满足服务质量要求。在本文中,我们提出了一个截止日期和成本清历的调度算法,其最小化基础设施的截止日期约束下的工作流程的执行成本作为服务(IAAS)模型。考虑虚拟机(VM)性能变化和采集延迟,我们首先将任务划分为拓扑结构的不同级别,以便在同一级别的任务之间不存在依赖性。三个字符串用于编写所提出的算法中的基因,以更好地反映云环境的异构和弹性特性。然后,HEFT用于生成具有最小完成时间和成本的个体。开发了新颖的方案,用于交叉和突变,以增加解决方案的多样性。基于此过程,提出了一种考虑成本和截止日期的任务调度方法。关于模拟物联网结构化任务的工作流程的实验表明,与最先进的算法相比,我们的算法能够实现高成功率并执行良好。

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