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Dynamic channel allocation-based call admission control in cognitive radio networks

机译:基于动态信道分配的认知无线网络中的呼叫入学控制

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To alleviate the performance degradation of secondary users (SUs) due to failed handoff, channel reservation is applied as an efficient way in call admission control design in many previous studies on cognitive radio networks. However, in a cognitive radio environment, a straightforward application of this technique could actually reduce the probability of successful handoff, due to its conservative way of utilizing time-varying primary spectrum resource. In this work, a slotted call admission control scheme integrated with dynamic channel allocation is proposed to address the issue. In the proposed scheme, admitting user only occurs at the beginning of a new slot; thus, new SUs arriving between two slots must first enter a waiting queue until the next slot arrives. By imposing a mandatory yet limited waiting time on new SUs, the proposed scheme offers an opportunity to allow admitted SUs to fully utilize the available primary spectrum. An analytical framework using a three-dimensional discrete-time Markov chain is developed to analyze the impact of the proposed scheme on both the call-level and packet-level performances of SUs. Simulation results verify the accuracy of the analysis and show the effectiveness of the proposed scheme in terms of reducing blocking and dropping probabilities, lowering packet queueing delay, and improving spectrum utilization efficiency.
机译:为了减轻次要用户(SUS)由于越区切换失败的性能下降,信道预留被施加为在认知无线电网络中的许多以前的研究中呼叫准入控制的设计的有效方式。然而,在认知无线电环境中,这种技术的直接应用其实可以切换成功,概率降低因采用随时间变化的主要频谱资源及其保守的方式。在这项工作中,动态信道分配集成开槽准入控制机制,提出了解决这一问题。在所提出的方案,承认用户仅发生在一个新的时隙的开始;因此,直到下一个时隙到达两个时隙之间抵达新的SU必须先输入一个等待队列。通过对新的SU实行强制性仍是有限的等待时间,该方案提供了一个机会,允许承认的SU充分利用可用的一次频谱。采用三维离散时间马尔可夫链的分析框架得以确立,分析该方案对SU的调用级和数据包级的表演既影响。仿真结果验证了分析的准确性,并显示在减少阻塞和滴概率,降低分组排队延迟,提高频谱利用率方面所提出的方案的有效性。

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