传感器网络平台在线调度策略的自适应

C. Decker, T. Riedel, E. Peev, M. Beigl
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引用次数: 8

摘要

当前的传感器网络平台执行多个过程,包括传感器采样、通信和各种计算任务。当部署在不可预测的环境中时,可能会出现这些流程的复杂时间表。在这种情况下,需要保持典型的传感器网络质量,如传感器的周期性采样,避免过程饥饿和自动能量管理。我们提出了一个由调度程序、调度程序和控制器组成的传感器节点调度框架,用于在线适应进程的执行。关键组件是控制器和增强的调度程序,实现诸如抖动校正和饥饿避免之类的策略。此外,该框架意识到传感器的能量消耗。我们表明,在不可预测的环境中,我们的受控调度框架的性能明显优于非受控的单个调度程序。我们提出的措施可以有效地实施。大量的仿真和在粒子计算机平台上的首次实现表明了结果
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Adaptation of On-line Scheduling Strategies for Sensor Network Platforms
Current sensor network platforms perform multiple processes including sensor sampling, communication, and various computational tasks. When deployed in unpredictable environments, complex schedules of those processes may arise. Typical sensor network qualities like periodic sampling of sensors, avoidance of process starvation and automatic energy management are required to be maintained in such situations. We propose a scheduling framework for senor nodes consisting of a scheduler, a dispatcher and a controller for an on-line adaptation of the process execution. The key components are a controller and an enhanced dispatcher implementing strategies like jitter correction and starvation avoidance. Further, the framework is aware of the energy consumption of sensors. We show that our controlled scheduling framework performs significantly better than a non-controlled single scheduler in unpredictable environments. Our proposed measures are efficient to implement. Results are shown by extensive simulations and a first implementation on the particle computer platform
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