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A Communication Paradigm for Hybrid Sensor/Actuator Networks

机译:混合传感器/执行器网络的通信范例

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This paper investigates an anycast communication service for a hybrid sensor/actuator network, consisting of both resource-rich and resource-impoverished devices. The key idea is to exploit the capabilities of resource-rich devices (called micro-servers) to reduce the communication burden on smaller, energy, bandwidth and memory constrained sensor nodes. The goal is to deliver sensor data to the nearest micro-server, which can (ⅰ) store it (ⅱ) forward it to other micro-servers using out-of-band communication or (ⅲ) perform the desired actuation. We propose and evaluate a reverse tree-based anycast mechanism tailored to deal with the unique event dynamics in sensor networks. Our approach is to construct an anycast tree rooted at each potential event source, which micro-servers can dynamically join and leave. Our anycast mechanism is self-organizing, distributed, robust, scalable, routing-protocol independent and incurs very little overhead. Simulations using Network Simulator (ns-2) show that: our anycast mechanism when added to Directed Diffusion can reduce the network's energy consumption by more than 50%; can reduce both the mean end-to-end latency of the transmission and the mean number of transmissions by more than 50%; achieves 99% data delivery rate for low and moderate micro-server mobility rate; and handles network dynamics reasonably well.
机译:本文研究了一种混合传感器/执行器网络的任播通信服务,该服务由资源丰富和资源贫乏的设备组成。关键思想是利用资源丰富的设备(称为微型服务器)的功能来减少较小,能量,带宽和内存受限的传感器节点上的通信负担。目的是将传感器数据传递到最近的微型服务器,该服务器可以(ⅰ)使用带外通信将其存储(ⅱ)转发给其他微型服务器,或者(ⅲ)执行所需的操作。我们提出并评估了一种基于反向树的任播机制,该机制旨在处理传感器网络中的独特事件动态。我们的方法是构建一个植根于每个潜在事件源的任播树,微服务器可以动态加入和退出该树。我们的任播机制是自组织的,分布式的,健壮的,可伸缩的,与路由协议无关的,并且仅产生很少的开销。使用网络模拟器(ns-2)进行的仿真表明:将我们的任意播机制添加到定向扩散中后,可以将网络能耗降低50%以上;可以将传输的平均端到端等待时间和平均传输数减少50%以上;中低微服务器移动性达到99%的数据传输率;并合理地处理网络动态。

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