定制实现云/网格环境容错的最小副本数量

Mahdi S. Almhanna, Tariq A. Murshedi, F. S. Al-Turaihi, Rafah M. Almuttairi
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引用次数: 0

摘要

网络由众多资源组成,因此在规划过程中绝不能忽视容错性并将其考虑在内。这是因为实施过程中的错误会导致时间和精力的浪费,从而浪费这些资源。有效解决这一问题的方法之一是在多个资源上执行任务,以尽量减少任务失败的发生。但是,使用不指定或固定数量的资源会导致网络资源耗尽,网络整体失效。复制在提高分布式系统的数据可用性方面发挥着关键作用。通过在多个位置存储数据,即使由于站点故障导致某些副本不可用,用户仍可访问数据。许多基于复制的算法使用每个函数预定的迭代次数,这可能会消耗过多的网络资源,即使正在进行的任务并不需要如此丰富的资源。本文提出将任务复制作为高效容错调度系统的可行机制。我们引入了一种算法,可根据网络故障历史动态选择最佳和最少的副本数量。这种方法旨在最大限度地降低任务执行过程中的故障率。
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Customizing the minimum number of replicas for achieving fault tolerance in a cloud/grid environment
Networks consist of numerous resources; it is crucial not to overlook fault tolerance and consider it during planning. This is because errors during implementation can result in wasted time and effort, thereby squandering these resources. One solution to address this issue effectively is to implement the task on multiple resources to minimize the occurrence of failed tasks. However, employing an unspecified or fixed number of resources can lead to the depletion of network resources and the overall failure of the network. Replication plays a pivotal role in enhancing data availability in distributed systems. By storing data in multiple locations, users can still access it even if some copies are unavailable due to site failure. Many replication-based algorithms utilize a predetermined number of iterations per function, which may consume excessive network resources, even if the ongoing task does not require such abundant resources. This paper proposes task replication as a viable mechanism for an efficient and fault-tolerant scheduling system. We introduce an algorithm that dynamically selects the optimal and minimal number of replicas based on the network's failure history. This approach aims to minimize the failure rate during task execution.
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