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Motion Adaptive Vertical Handoff in Cellular/WLAN Heterogeneous Wireless Network

机译:蜂窝/ WLAN异构无线网络中的运动自适应垂直切换

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In heterogeneous wireless network, vertical handoff plays an important role for guaranteeing quality of service and overall performance of network. Conventional vertical handoff trigger schemes are mostly developed from horizontal handoff in homogeneous cellular network. Basically, they can be summarized as hysteresis-based and dwelling-timer-based algorithms, which are reliable on avoiding unnecessary handoff caused by the terminals dwelling at the edge of WLAN coverage. However, the coverage of WLAN is much smaller compared with cellular network, while the motion types of terminals can be various in a typical outdoor scenario. As a result, traditional algorithms are less effective in avoiding unnecessary handoff triggered by vehicle-borne terminals with various speeds. Besides that, hysteresis and dwelling-timer thresholds usually need to be modified to satisfy different channel environments. For solving this problem, a vertical handoff algorithm based on Q-learning is proposed in this paper. Q-learning can provide the decider with self-adaptive ability for handling the terminals’ handoff requests with different motion types and channel conditions. Meanwhile, Neural Fuzzy Inference System (NFIS) is embedded to retain a continuous perception of the state space. Simulation results verify that the proposed algorithm can achieve lower unnecessary handoff probability compared with the other two conventional algorithms.
机译:在异构无线网络中,垂直切换为保证服务质量和网络的整体性能起着重要作用。传统的垂直切换触发方案主要从均匀蜂窝网络中的水平切换开发。基本上,它们可以总结为基于滞后和基于住宅的算法,可靠地避免由终端居住在WLAN覆盖范围边缘的不必要的切换。然而,与蜂窝网络相比,WLAN的覆盖率要小得多,而终端的运动类型可以是典型的户外场景中的各种各样的。结果,传统的算法在避免具有各种速度的车辆传送终端触发的不必要的切换方面较小。此外,通常需要修改滞后和居住定时器阈值以满足不同的信道环境。为了解决这个问题,本文提出了一种基于Q学习的垂直切换算法。 Q-Learning可以提供具有不同运动类型和信道条件的终端的切换请求的自适应能力。同时,嵌入神经模糊推理系统(NFIS)以保持对状态空间的持续感知。仿真结果验证,与其他两个传统算法相比,所提出的算法可以实现较低的不必要的切换概率。

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