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An energy-efficient concurrency control algorithm for mobile ad-hoc network databases.

机译:一种用于移动自组织网络数据库的节能并发控制算法。

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摘要

With the rapid growth of the wireless networking technology and mobile computing devices, there is an increasing demand for processing mobile database transactions in mission-critical applications such as disaster rescue and military operations that do not require a fixed infrastructure, so that mobile users can access and manipulate the database anytime and anywhere. A Mobile Ad-hoc Network (MANET) is a collection of mobile, wireless and battery-powered nodes without a fixed infrastructure; therefore it fits well in such applications. However, when a node runs out of energy or has insufficient energy to function, communication may fail, disconnections may happen, execution of transactions may be prolonged, and thus time-critical transactions may be aborted if they missed their deadlines. In order to guarantee timely and correct results for multiple concurrent transactions, energy-efficient database concurrency control (CC) techniques become critical. Due to the characteristics of MANET databases, existing CC algorithms cannot work effectively.;In this dissertation, an energy-efficient CC algorithm, called Sequential Order with Dynamic Adjustment (SODA), is developed for mission-critical MANET databases in a clustered network architecture where nodes are divided into clusters, each of which has a node, called a cluster head, responsible for the processing of all nodes in the cluster. The cluster structure is constructed using a novel weighted clustering algorithm, called MEW (Mobility, Energy, and Workload), that uses node mobility, remaining energy and workload to group nodes into clusters and select cluster heads. In SODA, in order to conserve energy and balance energy consumption among servers so that the lifetime of the network is prolonged, cluster heads are elected to work as coordinating servers. SODA is based on optimistic CC to offer high transaction concurrency and avoid unbounded blocking time. It utilizes the sequential order of committed transactions to simplify the validation process and dynamically adjusts the sequential order of committed transactions to reduce transaction aborts and improve system throughput.;Besides correctness proof and theoretical analysis, comprehensive simulation experiments were conducted to study the performance of MEW and SODA. The simulation results confirm that MEW prolongs the lifetime of MANETs and has a lower cluster head change rate and re-affiliation rate than the existing algorithm MOBIC. The simulation results also show the superiority of SODA over the existing techniques, SESAMO and S2PL, in terms of transaction abort rate, system throughput, total energy consumption by all servers, and degree of balancing energy consumption among servers.
机译:随着无线网络技术和移动计算设备的迅猛发展,在诸如灾害救援和军事行动等任务关键型应用程序中处理移动数据库事务的需求不断增长,这些应用程序不需要固定的基础结构,因此移动用户可以访问随时随地操作数据库。移动自组织网络(MANET)是没有固定基础结构的移动,无线和电池供电节点的集合;因此,它非常适合此类应用。但是,当节点的能量用尽或能量不足以运行时,通信可能会失败,断开连接可能会发生,事务的执行可能会延长,因此,如果时间紧迫的事务错过了最后期限,则它们可能会中止。为了保证多个并发事务的及时正确的结果,高效的数据库并发控制(CC)技术变得至关重要。由于MANET数据库的特点,现有的CC算法无法有效地工作。本文针对集群网络体系结构中的关键任务MANET数据库,开发了一种高效的CC算法,即动态调整顺序排序算法(SODA)。其中,节点分为多个集群,每个集群都有一个称为集群头的节点,负责处理集群中的所有节点。群集结构是使用一种称为MEW(移动性,能源和工作量)的新型加权聚类算法构造的,该算法使用节点移动性,剩余能量和工作量将节点分组到群集中并选择群集头。在SODA中,为了节约能源并平衡服务器之间的能源消耗,以延长网络的寿命,选择了簇头作为协调服务器。 SODA基于乐观CC,可提供高事务并发性并避免无限制的阻塞时间。它利用已提交事务的顺序来简化验证过程,并动态调整已提交事务的顺序以减少事务中止并提高系统吞吐量。除了正确性证明和理论分析之外,还进行了全面的仿真实验来研究MEW的性能。和SODA。仿真结果证实,MEW可以延长MANET的寿命,并且比现有算法MOBIC具有更低的簇头更改率和重新隶属率。仿真结果还显示,在事务中止率,系统吞吐量,所有服务器的总能耗以及服务器之间的能耗平衡度方面,SODA优于现有技术SESAMO和S2PL。

著录项

  • 作者

    Xing, Zhaowen.;

  • 作者单位

    The University of Oklahoma.;

  • 授予单位 The University of Oklahoma.;
  • 学科 Computer Science.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 161 p.
  • 总页数 161
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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