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[期刊论文]

Cost-Driven Scheduling for Deadline-Based Workflow Across Multiple Clouds

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author:

Guo, Wenzhong (Guo, Wenzhong.) [1] | Lin, Bing (Lin, Bing.) [2] | Chen, Guolong (Chen, Guolong.) [3] | Unfold

Indexed by:

EI

Abstract:

With the development of cloud computing, the coexistence of multiple cloud service providers appears in the current cloud market. Due to heterogeneous instance types, different bandwidths and various price models among multiple clouds, it is a challenging issue to schedule a deadline-constrained scientific workflow across multiple clouds. Existing research for workflow scheduling are mostly in the traditional distributed computing environment (such as grid), and only a few primal contributions are made in the cloud environment. This paper proposes a scheduling strategy for a deadline-constrained scientific workflow across multiple clouds. In order to minimize the execution cost of the workflow while meeting its deadline, our strategy utilizes the discrete particle swarm optimization technique, and adopts randomly two-point crossover operator and randomly single point mutation operator of the genetic algorithm. Besides, the strategy optimizes the performance for both computation cost and data transfer cost across multiple clouds. Our strategy is evaluated through well-known workflows, and experimental results show that it performs better than other state-of-the-art strategies. © 2004-2012 IEEE.

Keyword:

Cloud computing Data transfer Genetic algorithms Particle swarm optimization (PSO) Scheduling

Community:

  • [ 1 ] [Guo, Wenzhong]College of Mathematics and Computer Sciences, Fuzhou University, Fuzhou; 350108, China
  • [ 2 ] [Guo, Wenzhong]Fujian Provincial Key Laboratory of Network Computing and Intelligent Information Processing, Fuzhou University, Fuzhou; 350108, China
  • [ 3 ] [Guo, Wenzhong]Fujian Collaborative Innovation Center for Big Data Applications in Governments, Fuzhou University, Fuzhou; 350003, China
  • [ 4 ] [Lin, Bing]College of Physics and Energy, Fujian Normal University, Fuzhou; 350117, China
  • [ 5 ] [Lin, Bing]Fujian Prov. Collaborative Innovation Center for Optoelectronic Semiconductors and Efficient Devices, Fujian Normal University, Xiamen; 361005, China
  • [ 6 ] [Chen, Guolong]College of Mathematics and Computer Sciences, Fuzhou University, Fuzhou; 350108, China
  • [ 7 ] [Chen, Guolong]Fujian Provincial Key Laboratory of Network Computing and Intelligent Information Processing, Fuzhou University, Fuzhou; 350108, China
  • [ 8 ] [Chen, Guolong]Fujian Collaborative Innovation Center for Big Data Applications in Governments, Fuzhou University, Fuzhou; 350003, China
  • [ 9 ] [Chen, Yuzhong]College of Mathematics and Computer Sciences, Fuzhou University, Fuzhou; 350108, China
  • [ 10 ] [Chen, Yuzhong]Fujian Provincial Key Laboratory of Network Computing and Intelligent Information Processing, Fuzhou University, Fuzhou; 350108, China
  • [ 11 ] [Chen, Yuzhong]Fujian Collaborative Innovation Center for Big Data Applications in Governments, Fuzhou University, Fuzhou; 350003, China
  • [ 12 ] [Liang, Feng]Department of Computer Science, University of Hong Kong, Hong Kong, Hong Kong

Reprint 's Address:

  • [lin, bing]fujian prov. collaborative innovation center for optoelectronic semiconductors and efficient devices, fujian normal university, xiamen; 361005, china;;[lin, bing]college of physics and energy, fujian normal university, fuzhou; 350117, china

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Related Article:

Source :

IEEE Transactions on Network and Service Management

Year: 2018

Issue: 4

Volume: 15

Page: 1571-1585

4 . 6 8 2

JCR@2018

4 . 7 0 0

JCR@2023

ESI HC Threshold:174

JCR Journal Grade:1

CAS Journal Grade:3

Cited Count:

WoS CC Cited Count:

SCOPUS Cited Count: 45

30 Days PV: 4

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