DutyCon: A dynamic duty-cycle control approach to end-to-end delay guarantees in wireless sensor networks

Xiaodong Wang, Xiaorui Wang, Liu Liu, G. Xing
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引用次数: 19

Abstract

It is well known that periodically putting nodes into sleep can effectively save energy in wireless sensor networks at the cost of increased communication delays. However, most existing work mainly focuses on the static sleep scheduling, which cannot guarantee the desired delay when the network conditions change dynamically. In many applications with user-specified end-to-end delay requirements, the duty cycle of every node should be tuned individually at runtime based on the network conditions to achieve the desired end-to-end delay guarantees and energy efficiency. In this article, we propose DutyCon, a control theory-based dynamic duty-cycle control approach. DutyCon decomposes the end-to-end delay guarantee problem into a set of single-hop delay guarantee problems along each data flow in the network. We then formulate the single-hop delay guarantee problem as a dynamic feedback control problem and design the controller rigorously, based on feedback control theory, for analytic assurance of control accuracy and system stability. DutyCon also features a queuing delay adaptation scheme that adapts the duty cycle of each node to unpredictable incoming packet rates, as well as a novel energy-balancing approach that extends the network lifetime by dynamically adjusting the delay requirement allocated to each hop. Our empirical results on a hardware testbed demonstrate that DutyCon can effectively achieve the desired trade-off between end-to-end delay and energy conservation. Extensive simulation results also show that DutyCon outperforms two baseline sleep scheduling protocols by having more energy savings while meeting the end-to-end delay requirements.
在无线传感器网络中实现端到端时延保证的动态占空比控制方法
众所周知,在无线传感器网络中,周期性地使节点进入休眠状态可以有效地节省能量,但代价是增加通信延迟。然而,现有的大部分工作主要集中在静态睡眠调度上,当网络状况发生动态变化时,静态睡眠调度无法保证期望的延迟。在许多具有用户指定的端到端延迟需求的应用程序中,每个节点的占空比应在运行时根据网络条件单独调优,以实现所需的端到端延迟保证和能源效率。在本文中,我们提出了一种基于控制理论的动态占空比控制方法。DutyCon将端到端时延保证问题分解为网络中每个数据流上的一组单跳时延保证问题。然后将单跳时延保证问题表述为动态反馈控制问题,并根据反馈控制理论严格设计控制器,从分析上保证控制精度和系统稳定性。DutyCon还具有排队延迟适应方案,该方案使每个节点的占空比适应不可预测的传入数据包速率,以及一种新颖的能量平衡方法,通过动态调整分配给每一跳的延迟要求来延长网络生命周期。我们在硬件测试平台上的经验结果表明,DutyCon可以有效地实现端到端延迟和节能之间的折衷。广泛的仿真结果还表明,DutyCon在满足端到端延迟要求的同时节省了更多的能源,从而优于两种基线睡眠调度协议。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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