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Design and analysis of self-stabilizing sensor network protocols.

机译:自稳定传感器网络协议的设计和分析。

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摘要

A sensor is a battery-operated small computer with an antenna and a sensing board that can sense magnetism, sound, heat, etc. Sensors in a network communicate and cooperate with other sensors to perform given tasks. A sensor network is exposed to various dynamic factors and faults, such as topology changes, energy saving features, unreliable communication, and hardware/software failures. Thus, protocols in this sensor network should be able to adapt to dynamic factors and recover from faults.; In this dissertation, we focus on designing and analyzing a class of sensor network protocols, called self-stabilizing protocols. A self-stabilizing protocol is guaranteed to return to a state where it performs its intended function correctly, when some dynamic factors or faults corrupt the state of the protocol arbitrarily. Therefore, in order to make a sensor network resilient to dynamic factors and faults, each protocol in the sensor network should be self-stabilizing.; We first develop a state-based model that can be used to formally specify sensor network protocols. This model accommodates several unique characteristics of sensor networks, such as unavoidable local broadcast, probabilistic message transmission, asymmetric communication, message collision, and timeout actions and randomization steps. Second, we present analysis methods for verifying and analyzing the correctness and self-stabilization properties of sensor network protocols specified in this model. Third, using the state-based model and analysis methods, we design three self-stabilizing sensor network protocols, prove their self-stabilization properties, and estimate their performance. These three self-stabilizing protocols are a sentry-sleeper protocol that elects a sentry from a group of sensors at the beginning of each time period, a logical grid routing protocol that builds a routing tree whose root is the base station, and a family of flood sequencing protocols that distinguish between fresh and redundant flood messages using sequence numbers.
机译:传感器是电池供电的小型计算机,具有天线和可感应磁性,声音,热量等的感应板。网络中的传感器可与其他传感器通信并配合执行给定的任务。传感器网络面临各种动态因素和故障,例如拓扑结构更改,节能功能,不可靠的通信以及硬件/软件故障。因此,该传感器网络中的协议应能够适应动态因素并从故障中恢复。本文着重设计和分析了一类传感器网络协议,即自稳定协议。当某些动态因素或故障任意破坏协议状态时,可以保证自稳定协议返回正确执行其预期功能的状态。因此,为了使传感器网络能够适应动态因素和故障,传感器网络中的每个协议都应具有自稳定性。我们首先开发一个基于状态的模型,该模型可用于正式指定传感器网络协议。该模型适应传感器网络的几个独特特征,例如不可避免的本地广播,概率消息传输,非对称通信,消息冲突以及超时动作和随机化步骤。其次,我们提出了用于验证和分析此模型中指定的传感器网络协议的正确性和自稳定特性的分析方法。第三,使用基于状态的模型和分析方法,设计了三种自稳定传感器网络协议,证明了它们的自稳定特性,并评估了它们的性能。这三个自稳定协议是一个哨兵睡眠者协议,该哨兵-睡眠者协议在每个时间段的开始从一组传感器中选择一个哨兵;一个逻辑网格路由协议,该协议构建以根为基站的路由树,以及一个泛洪排序协议,使用序列号来区分新泛洪消息和冗余泛洪消息。

著录项

  • 作者

    Choi, Young-ri.;

  • 作者单位

    The University of Texas at Austin.$bComputer Sciences.;

  • 授予单位 The University of Texas at Austin.$bComputer Sciences.;
  • 学科 Computer Science.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 162 p.
  • 总页数 162
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 自动化技术、计算机技术;
  • 关键词

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