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Interference Resilient Duty Cycling for Sensor Networks Under Co-Existing Environments

机译:共存环境下传感器网络的干扰弹性占空比

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To save energy, wireless sensor networks often run in a low-duty-cycle mode, where the radios of sensor nodes are scheduled between ON and OFF states. For nodes to communicate with each other, low power listening (LPL) and low power probing (LPP) are two types of rendezvous mechanisms. Nodes with LPL or LPP rely on signal strength or probe packets to detect potential transmissions, and then keep the radio-ON for communications. Unfortunately, in co-existing environments, signal strength and probe packets are susceptible to interference, resulting in undesirable radio ON time when the signal strength of interference is above a threshold or a probe packet is interfered. To address the issue, we propose ZiSense, a low duty cycling mechanism resilient to interference. Instead of checking the signal strength or decoding the probe packets, ZiSense detects the ZigBee signals and wakes up nodes accordingly. On sensor nodes with limited information and resource, we carefully study and extract short-term features purely from the time-domain RSSI sequence, and design a rule-based approach to efficiently identify the existence of ZigBee. We theoretically analyze the benefit of ZiSense in different environments and implement a prototype in TinyOS with TelosB motes. We examine ZiSense performance under controlled interference and office environments. The evaluation results show that, compared with the state-of-the-art rendezvous mechanisms, ZiSense significantly reduces the energy consumption.
机译:为了节省能源,无线传感器网络通常以低占空比模式运行,在该模式下,传感器节点的无线电安排在“开”和“关”状态之间。为了使节点之间能够相互通信,低功耗侦听(LPL)和低功耗探测(LPP)是两种会合机制。具有LPL或LPP的节点依靠信号强度或探测数据包来检测潜在的传输,然后保持radio-ON进行通信。不幸的是,在共存的环境中,信号强度和探测包容易受到干扰,当干扰的信号强度高于阈值或探测包受到干扰时,会导致不希望的无线电开启时间。为了解决这个问题,我们提出了ZiSense,一种抗干扰的低占空比循环机制。 ZiSense可以检测ZigBee信号并相应地唤醒节点,而不是检查信号强度或解码探测数据包。在信息和资源有限的传感器节点上,我们仅从时域RSSI序列中仔细研究和提取短期特征,并设计基于规则的方法来有效识别ZigBee的存在。我们从理论上分析ZiSense在不同环境中的好处,并在TinyOS中使用TelosB节点实现原型。我们研究了在受控干扰和办公环境下的ZiSense性能。评估结果表明,与最新的会合机制相比,ZiSense显着降低了能耗。

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