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Modeling and scheduling hybrid workflows of tasks and task interaction graphs on the cloud

机译:在云上建模和调度任务和任务交互图的混合工作流

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A workflow represents a complex activity that is often modeled as a Directed Acyclic Graph (DAG) in which each vertex is a task and each directed edge represents both precedence and possible communication from its originating vertex to its ending vertex. When the execution of a task is completed, the communication with its successor(s) can start and anticipated results are transferred. Only after all parents of a task are completed and their results (if any) are received by the task its execution can start. This constraint restricts a more general case in which some tasks could interact during their executions. In this paper, a task model composed of both interaction and precedence of tasks is introduced. It is shown that, under certain conditions, this kind of graph can be transformed into an extended DAG, called Hybrid DAG (HDAG), composed of tasks and super-tasks. With this, it becomes possible to model many applications in the form of hybrid workflows and go about scheduling them on the cloud. In this paper, validity conditions of such graphs are investigated and a verification algorithm is developed. The time used by this algorithm is evaluated. An algorithm for scheduling hybrid workflows is presented and its performance is evaluated. The effect of different values for relative deadline on the schedulability of workflows is also presented.
机译:工作流表示复杂的活动,通常将其建模为有向非循环图(DAG),其中每个顶点都是一个任务,每个有向边代表从其原始顶点到其结束顶点的优先级和可能的通信。完成任务的执行后,便可以开始与其后继程序的通信,并传送预期的结果。仅在任务的所有父项都已完成并且任务接收到其结果(如果有)后,才能开始执行。此约束限制了一个更一般的情况,其中某些任务在执行过程中可能会发生交互。本文介绍了一个由任务交互和任务优先级组成的任务模型。结果表明,在某些条件下,这种图可以转换为由任务和超级任务组成的扩展DAG,称为混合DAG(HDAG)。这样,就可以以混合工作流的形式对许多应用程序进行建模,然后在云上进行调度。本文研究了此类图的有效性条件,并开发了一种验证算法。评估此算法使用的时间。提出了一种用于调度混合工作流的算法,并对其性能进行了评估。还介绍了相对期限的不同值对工作流的可调度性的影响。

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