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A Markov Chain Monte Carlo Approach to Cost Matrix Generation for Scheduling Performance Evaluation

Performance 2018-03-23 v1

Abstract

In high performance computing, scheduling of tasks and allocation to machines is very critical especially when we are dealing with heterogeneous execution costs. Simulations can be performed with a large variety of environments and application models. However, this technique is sensitive to bias when it relies on random instances with an uncontrolled distribution. We use methods from the literature to provide formal guarantee on the distribution of the instance. In particular, it is desirable to ensure a uniform distribution among the instances with a given task and machine heterogeneity. In this article, we propose a method that generates instances (cost matrices) with a known distribution where tasks are scheduled on machines with heterogeneous execution costs.

Keywords

Cite

@article{arxiv.1803.08121,
  title  = {A Markov Chain Monte Carlo Approach to Cost Matrix Generation for Scheduling Performance Evaluation},
  author = {Louis-Claude Canon and Mohamad El Sayah and Pierre-Cyrille Héam},
  journal= {arXiv preprint arXiv:1803.08121},
  year   = {2018}
}

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26 pages