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A demand-assignment algorithm based on a Markov modulated chain prediction model for satellite bandwidth allocation

机译:基于马尔可夫调制链预测模型的卫星带宽分配需求分配算法

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摘要

This article deals with the problem of the design of a control-based demand-assignment algorithm for a satellite access network using a Markov modulated chain traffic prediction model. The objective is to guarantee a target Quality of Service (QoS) to Internet traffic, while efficiently exploiting the air interface. The proposed algorithm is in charge of dynamically partitioning the uplink bandwidth capacity in a satellite spotbeam among the in-progress connections. Such partition is performed aiming at matching the QoS requirements of each connection and maximizing the satellite bandwidth exploitation. A closed-loop Control Theory approach is adopted to efficiently tackle the problem of the delay between bandwidth requests and bandwidth assignments, while minimizing the signaling overhead caused by control messages. The algorithm efficiently copes with both the satellite propagation delay and the delays inherent in the periodic nature of the bandwidth request mechanism. The proposed demand-assignment algorithm and Markov chain traffic prediction model are shown to improve the overall satellite network performance through extensive simulation experiments.
机译:本文讨论了使用马尔可夫调制链流量预测模型为卫星接入网设计基于控制的需求分配算法的问题。目的是在有效利用空中接口的同时,保证针对互联网流量的目标服务质量(QoS)。所提出的算法负责在进行中的连接之间动态分配卫星点波束中的上行链路带宽容量。进行这种划分的目的是匹配每个连接的QoS要求,并最大程度地利用卫星带宽。采用闭环控制理论方法可有效解决带宽请求和带宽分配之间的延迟问题,同时最大程度地减少由控制消息引起的信令开销。该算法有效地处理了卫星传播延迟和带宽请求机制的周期性固有的延迟。提出的需求分配算法和马尔可夫链交通预测模型通过大量的仿真实验显示,可以改善整个卫星网络的性能。

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