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Dynamic scheduling for switched processing systems with substantial service-mode switching times

机译:具有大量服务模式切换时间的切换处理系统的动态调度

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摘要

Switched Processing Systems (SPS) represent canonical models for many communication and computer systems. Over the years, much research has been devoted to developing the best scheduling policies to optimize the various performance metrics of interest. These policies have mostly originated from the well-known MaxWeight discipline, which at any point in time switches the system into the service mode possessing "maximal matching" with the system state (e.g., queue-length, workload, etc.). However, for simplicity it is often assumed that the switching times between service modes are "negligible"-but this proves to be impractical in some applications. In this study, we propose a new scheduling strategy (called the Dynamic Cone Policy) for SPS, which includes substantial service-mode switching times. The goal is to maximize throughput and maintain system stability under fairly mild stochastic assumptions. For practical purposes, an extended scheduling strategy (called the Practical Dynamic Cone Policy) is developed to reduce the computational complexity of the Dynamic Cone Policy and at the same time mitigate job delay. A simulation study shows that the proposed practical policy clearly outperforms another throughput-maximizing policy called BatchAdapt, both in terms of the average and the 95th percentile of job delay for various types of input traffic.
机译:交换处理系统(SPS)代表了许多通信和计算机系统的规范模型。多年来,许多研究致力于开发最佳调度策略,以优化所需的各种性能指标。这些策略主要源自众所周知的MaxWeight学科,该学科在任何时间点都将系统切换到服务模式,该服务模式具有与系统状态(例如队列长度,工作量等)的“最大匹配”。然而,为简单起见,通常假定服务模式之间的切换时间是“可忽略的”,但这在某些应用中被证明是不切实际的。在这项研究中,我们为SPS提出了一种新的调度策略(称为动态锥策略),其中包括大量的服务模式切换时间。目标是在相当温和的随机假设下最大化吞吐量并保持系统稳定性。出于实际目的,开发了扩展的调度策略(称为“实用动态锥策略”)以降低动态锥策略的计算复杂度,同时减轻作业延迟。仿真研究表明,在各种输入流量类型的平均工作延迟和95%的工作延迟方面,拟议的实用策略明显优于另一个称为BatchAdapt的吞吐量最大化策略。

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