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Protocol architectures for energy efficient real-time data communications in mobile ad hoc networks.

机译:移动自组织网络中节能高效的实时数据通信的协议体系结构。

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The challenge in the design of a protocol architecture for Mobile Ad Hoc Networks (MANETs) is to efficiently convey information using an unreliable physical channel within a dynamic connected set of mobile limited-range limited-energy radios without the support of any infrastructure. Since a MANET is a dynamic, distributed entity, the optimal control of such a system should also be dynamic and adaptive. The global optimal solution for the coordination of a dynamic distributed network (i.e., centralized control) can be achieved by continuously monitoring the global network status, which is not realizable, or at least not scalable, due to the overhead required to obtain such information. Although distributed coordination is realizable and practical, due to the lack of reliable coordination, its performance becomes unstable as the network load increases and it cannot avoid the waste of valuable resources such as bandwidth and energy.; My thesis is that a protocol architecture for MANETs that coordinates channel access through an explicit collective decision process based on available local information will outperform completely distributed approaches under a wide range of operating conditions in terms of throughput and energy efficiency without sacrificing the practicality and scalability of the architecture, unlike centralized approaches.; This dissertation presents the Time Reservation using Adaptive Control for Energy Efficiency (TRACE) family of protocol architectures that achieve such coordinated channel access in a distributed manner for real-time data broadcasting in MANETs. The TRACE protocols include SH-TRACE, a time-frame based MAC protocol for single-hop networks; MH-TRACE, which adds coordination in a multi-hop environment to the SH-TRACE protocol; NB-TRACE, which incorporates network-wide broadcasting into the TRACE framework, and MC-TRACE, which extends the TRACE framework to multicasting and unicasting.; Extensive simulations and theoretical analysis have shown that the TRACE protocols outperform distributed network protocols in terms of energy efficiency without sacrificing the spatial reuse efficiency and the quality of service requirements of the application layer. Indeed, the TRACE protocols approach theoretical performance limits.
机译:在设计用于移动自组织网络(MANET)的协议体系结构时面临的挑战是,在没有任何基础架构支持的情况下,使用动态连接的移动受限范围有限能量无线电集内的不可靠物理信道​​来有效地传达信息。由于MANET是动态的分布式实体,因此此类系统的最佳控制也应该是动态的和自适应的。可以通过连续监视由于获得这样的信息所需的开销而无法实现或至少不可扩展的全局网络状态来实现用于协调动态分布式网络(即,集中控制)的全局最佳解决方案。尽管分布式协调是可以实现和实用的,但是由于缺乏可靠的协调,随着网络负载的增加,其性能将变得不稳定,并且无法避免浪费宝贵的资源,例如带宽和能量。我的论文认为,用于MANET的协议体系结构可基于可用的本地信息通过显式的集体决策过程来协调信道访问,在吞吐量和能效方面,在广泛的操作条件下,其性能将优于完全分布式的方法,而不会牺牲其实用性和可扩展性。体系结构,与集中式方法不同。本文提出了使用能效自适应控制(TRACE)系列协议体系结构进行时间预留的方法,该协议体系结构以分布式方式实现了此类协作信道的访问,以在MANET中进行实时数据广播。 TRACE协议包括SH-TRACE,一种用于单跳网络的基于时间帧的MAC协议; MH-TRACE,它将多跳环境中的协调添加到SH-TRACE协议中; NB-TRACE,它将全网广播合并到TRACE框架中; MC-TRACE,将TRACE框架扩展到多播和单播。大量的仿真和理论分析表明,TRACE协议在能效方面优于分布式网络协议,而不会牺牲空间复用效率和应用层的服务质量要求。确实,TRACE协议接近理论性能极限。

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