Cloud Computing Task Scheduling Model Based on Improved Ant Colony Algorithm
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To solve the problem of resource scheduling problem in cloud computing,a parallel scheduling model is proposed,which can improve the task parallelism while maintaining the serial relationships between tasks.Dynamic tasks submitted by users are divided into sub-tasks in some serial sequences,and it puts into scheduling queue with different priorities according to running order.For these tasks in the same priority scheduling queue,an improved Delay Time Shortest and Fairness Ant Colony Optimization(DSFACO) algorithm is applied to schedule.Considering both fairness and efficiency,DSFACO algorithm applies to subtask scheduling problem to realize shortest delay time,thus improves the user satisfaction.Experimental results show DSFACO algorithm is better than the TS-EACO algorithm in fairness,efficiency and task delay time,and it can realize the optimal scheduling in cloud computing.
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- OpenAlex
- W3150409989
- Document type
- article
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- EN
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- Jisuanji gongcheng
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