Interference-Resilient Ultra-Low Power Aperiodic Data Collection

T. Istomin, M. Trobinger, A. Murphy, G. Picco
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引用次数: 30

Abstract

Aperiodic data collection received little attention in wireless sensor networks, compared to its periodic counterpart. The recent Crystal system uses synchronous transmissions to support aperiodic traffic with near-perfect reliability, low latency, and ultra-low power consumption. However, its performance is known under mild interference-a concern, as Crystal relies heavily on the (noise-sensitive) capture effect and targets aperiodic traffic where "every packet counts". We exploit a 49-node indoor testbed where, in contrast to existing evaluations using only naturally present interference to evaluate synchronous systems, we rely on JamLab to generate noise patterns that are not only more disruptive and extensive, but also reproducible. We show that a properly configured, unmodified Crystal yields perfect reliability (unlike Glossy) in several noise scenarios, but cannot sustain extreme ones (e.g., an emulated microwave oven near the sink) that instead are handled by routing-based approaches. We extend Crystal with techniques known to mitigate interference—channel hopping and noise detection-and demonstrate that these allow Crystal to achieve performance akin to the original even under multiple sources of strong interference.
抗干扰超低功耗非周期数据采集
与周期性数据采集相比,非周期数据采集在无线传感器网络中很少受到关注。最近的Crystal系统使用同步传输来支持非周期性通信,具有近乎完美的可靠性、低延迟和超低功耗。然而,它的性能在轻微干扰下是已知的,这是一个问题,因为Crystal严重依赖于(噪声敏感的)捕获效应,并针对“每个数据包都重要”的非周期性流量。我们利用了一个49个节点的室内测试平台,在那里,与只使用自然存在的干扰来评估同步系统的现有评估相比,我们依靠JamLab来生成噪音模式,这些模式不仅更具破坏性和广博性,而且还具有可重复性。我们表明,正确配置,未经修改的Crystal在几种噪声场景中产生完美的可靠性(与Glossy不同),但不能维持极端的情况(例如,水槽附近的模拟微波炉),而不是通过基于路由的方法来处理。我们用已知的技术来扩展Crystal,以减轻干扰-信道跳变和噪声检测-并证明这些允许Crystal即使在多个强干扰源下也能达到与原始性能相似的性能。
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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