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Reducing Inter-piconet Delay for Large-Scale Bluetooth Scatternets

机译:减少大型蓝牙分散网的微微网间延迟

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摘要

When more than seven devices to be connected in a Bluetooth scatternet, bridge devices are used to connect two piconets into a scatternet. To deal with possible data transmissions between different piconets, the bridge device must switch to different masters frequently. Suppose that a bridge is serving a piconet and the master in another piconet is calling it at the same time, the calling master has to wait until the bridge completes the previous service. Such transmission delay may accumulate in a long period and the performance of the whole Bluetooth network will degrade significantly. This work tries to smooth the kind of transmission delay in Bluetooth network. This work proposes two new scheduling protocols: the static schedule and the hybrid schedule. This static schedule deals with this kind of coordination among piconets distributedly by applying edge coloring technique. In case of heavy traffic load, the static schedule is expected to perform well. On the other hand, in case of light traffic load, the static schedule may results in long and unavoidable routing delay even there is no transmission between piconets; thus a naive random round-robin schedule in each piconet becomes more appropriate in case of light traffic load. Thus, in the hybrid schedule, each master in its piconet runs round-robin scheme initially; when the traffic load is heavier than a predefined threshold value, it turn to run the static schedule. Also, a new graph model, delay graphs, is proposed to model and estimate the delay time required for the proposed scheduling schemes theoretically. Finally, we conduct simulations by using ns-2 simulator and Bluehoc to demonstrate the efficiency and effectiveness of the proposed scheduling protocols.
机译:当要在蓝牙分散网中连接七个以上的设备时,将使用桥接设备将两个微微网连接到分散网中。为了处理不同微微网之间可能的数据传输,桥接设备必须频繁切换到不同的主机。假设一个网桥正在为一个微网服务,而另一个微网中的主机正在同时对其进行呼叫,则呼叫的主机必须等到网桥完成之前的服务。这样的传输延迟可能会长时间累积,并且整个蓝牙网络的性能将大大降低。这项工作试图平滑蓝牙网络中的传输延迟。这项工作提出了两种新的调度协议:静态调度和混合调度。该静态调度表通过应用边缘着色技术来处理微微网之间的这种协调。如果通信量很大,则预计静态调度将执行良好。另一方面,在通信量负荷较小的情况下,即使在微微网之间没有传输,静态调度也可能导致较长且不可避免的路由延迟。因此,在交通负荷较轻的情况下,每个微微网中的幼稚随机轮询调度变得更加合适。因此,在混合调度中,其微微网中的每个主机最初都运行轮询方案;当流量负载超过预定义的阈值时,它将运行静态调度。此外,提出了一种新的图形模型,即延迟图,以从理论上建模和估计所提出的调度方案所需的延迟时间。最后,我们使用ns-2仿真器和Bluehoc进行仿真,以证明所提出的调度协议的效率和有效性。

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