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Controlled mobility in stochastic and dynamic wireless networks

机译:随机和动态无线网络中的受控移动性

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We consider the use of controlled mobility in wireless networks where messages arriving randomly in time and space are collected by mobile receivers (collectors). The collectors are responsible for receiving these messages via wireless transmission by dynamically adjusting their position in the network. Our goal is to utilize a combination of wireless transmission and controlled mobility to improve the throughput and delay performance in such networks. First, we consider a system with a single collector. We show that the necessary and sufficient stability condition for such a system is given by ρ < 1 where p is the expected system load. We derive lower bounds for the expected message waiting time in the system and develop policies that are stable for all loads ρ < 1 and have asymptotically optimal delay scaling. We show that the combination of mobility and wireless transmission results in a delay scaling of Θ(1/(1-ρ)) with the system load ρ, in contrast to the Θ(1/(1-ρ)~2) delay scaling in the corresponding system without wireless transmission, where the collector visits each message location. Next, we consider the system with multiple collectors. In the case where simultaneous transmissions to different collectors do not interfere with each other, we show that both the stability condition and the delay scaling extend from the single collector case. In the case where simultaneous transmissions to different collectors interfere with each other, we characterize the stability region of the system and show that a frame-based version of the well-known Max-Weight policy stabilizes the system asymptotically in the frame length.
机译:我们考虑在无线网络中使用受控移动性,在无线网络中,时间和空间随机到达的消息由移动接收器(收集器)收集。收集器负责通过动态调整它们在网络中的位置来通过无线传输接收这些消息。我们的目标是结合无线传输和受控移动性来提高此类网络的吞吐量和延迟性能。首先,我们考虑一个具有单个收集器的系统。我们表明,对于这样的系统,必要和充分的稳定性条件由ρ<1给出,其中p是预期的系统负载。我们得出系统中预期消息等待时间的下限,并制定对所有负载ρ<1稳定并且具有渐近最佳延迟缩放的策略。我们表明,移动性和无线传输的组合导致系统负载ρ的延迟缩放Θ(1 /(1-ρ)),与Θ(1 /(1-ρ)〜2)延迟缩放相反在没有无线传输的相应系统中,收集器访问每个消息位置。接下来,我们考虑具有多个收集器的系统。在同时传输到不同收集器的情况下,彼此之间不会产生干扰,我们证明稳定性条件和延迟缩放都是从单个收集器的情况开始的。在同时传输到不同收集器的情况相互干扰的情况下,我们表征了系统的稳定区域,并表明众所周知的最大权重策略的基于帧的版本在帧长上渐近稳定了系统。

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