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Multi-objective constraint task scheduling algorithm for multi-core processors

机译:多核处理器的多目标约束任务调度算法

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摘要

A task scheduling algorithm is an effective means to ensure multi-core processor system efficiency. This paper defines the task scheduling problem for multi-core processors and proposes a multi-objective constraint task scheduling algorithm based on artificial immune theory (MOCTS-AI). The MOCTS-AI uses vaccine extraction and vaccination to add prior knowledge to the problem and performs vaccine selection and population updating based on the Pareto optimum, thereby accelerating the convergence of the algorithm. In the MOCTS-AI, the crossover and mutation operators and the corresponding use probability for the task scheduling problem are designed to guarantee both the global and local search ability of the algorithm. Additionally, the antibody concentration in the the MOCTS-AI is designed based on the bivariate entropy. By designing the selection probability in consideration of the concentration probability and fitness probability, antibodies with high fitness and low concentration are selected, thereby optimizing the population and ensuring its diversity. A simulation experiment was performed to analyze the convergence of the algorithm and the solution diversity. Compared with other algorithms, the MOCTS-AI effectively optimizes the scheduling length, system energy consumption and system utilization.
机译:任务调度算法是一种有效的方法,可以确保多核处理器系统效率。本文定义了多核处理器的任务调度问题,并提出了一种基于人工免疫理论的多目标约束任务调度算法(Mocts-AI)。 Mocts-AI使用疫苗提取和疫苗接种,以基于Pareto的最佳方式对问题进行先前知识,并执行疫苗选择和群体更新,从而加速算法的收敛性。在MOCTS-AI中,交叉和突变运算符和任务调度问题的相应使用概率旨在保证算法的全局和本地搜索能力。另外,MOCTS-AI中的抗体浓度基于双偏见熵设计。通过考虑浓度概率和适应性概率来设计选择概率,选择具有高适合度和低浓度的抗体,从而优化群体并确保其多样性。进行仿真实验以分析算法和溶液多样性的收敛性。与其他算法相比,MOCTS-AI有效地优化了调度长度,系统能量消耗和系统利用率。

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