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Analytic models of adaptive load sharing schemes in distributed real-time systems

机译:分布式实时系统中自适应负载分担方案的解析模型

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In a distributed real-time system, nonuniform task arrivals may temporarily overload some nodes while leaving some other nodes idle. As a result, some of the tasks on an overloaded node may miss their deadlines even if the overall system has the capacity to meet the deadlines of all tasks. A decentralized, dynamic load sharing (LS) scheme has been proposed as a solution to this problem. Analytic queuing models to comparatively evaluate this LS scheme as well as three other schemes-no LS, LS with random selection of a receiver node, and LS with perfect information- are developed. The evolution of a node's load state is modeled as a continuous-time semi-Markov process, where cumulative execution time (CET), rather than the commonly-used queue length (QL), is employed to describe the workload of a node. The proposed scheme is compared against other LS schemes. The validity of analytic models is checked with simulations. Both analytic and simulation results indicate that by using judicious exchange/use of state information and Bayesian decision mechanism, the proposed scheme makes a significant improvement over other existing LS schemes in minimizing the probability of dynamic failure.
机译:在分布式实时系统中,不均匀的任务到达可能会暂时使某些节点过载,而使另一些节点保持空闲状态。结果,即使整个系统有能力满足所有任务的期限,过载节点上的某些任务也可能错过其期限。提出了一种分散的动态负载共享(LS)方案作为此问题的解决方案。开发了用于比较该LS方案和其他三个方案(无LS,具有接收节点的随机选择的LS和具有完善信息的LS)的比较排队模型。节点的负载状态的演变被建模为连续时间的半马尔可夫过程,其中使用累积执行时间(CET)而不是常用的队列长度(QL)来描述节点的工作负载。将提出的方案与其他LS方案进行比较。通过仿真检查分析模型的有效性。解析和仿真结果均表明,通过明智地交换/使用状态信息和贝叶斯决策机制,该方案在最小化动态故障概率方面比其他现有的LS方案有了显着改进。

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