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Spectrum Handoff based on Imperfect Channel State Prediction Probabilities with Collision Reduction in Cognitive Radio Ad Hoc Networks

机译:认知无线电Ad Hoc网络中基于不完全信道状态预测概率且具有冲突减少能力的频谱切换

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摘要

The spectrum handoff is highly critical as well as challenging in a cognitive radio ad hoc network (CRAHN) due to lack of coordination among secondary users (SUs), which leads to collisions among the SUs and consequently affects the performance of the network in terms of spectrum utilization and throughput. The target channel selection mechanism as part of handoff process can play an enormously significant role in minimizing the collisions among the SUs and improving the performance of a cognitive radio network (CRN). In this paper, an enhanced target channel selection scheme based on imperfect channel state prediction is proposed for the spectrum handoff among the SUs in a CRAHN. The proposed scheme includes an improved frame structure that increases coordination among the SUs in the ad hoc environment and helps in organizing the SUs according to the shortest job first principle during channel access. Unlike the existing prediction-based spectrum handoff techniques, the proposed scheme takes into account the accuracy of channel state prediction; the SUs affected due to false prediction are compensated by allowing them to contend for channel access within the same transmission cycle and thus enabling them to achieve higher throughput. The proposed scheme has been compared with the contemporary spectrum handoff schemes and the results have demonstrated substantial improvement in throughput and extended data delivery time by virtue of the reduced number of collisions.
机译:由于次要用户(SU)之间缺乏协调,频谱切换在认知无线电自组织网络(CRAHN)中非常关键,也极具挑战,这会导致SU之间的冲突,从而影响网络的性能。频谱利用率和吞吐量。目标信道选择机制作为切换过程的一部分,在最小化SU之间的冲突并改善认知无线电网络(CRN)的性能方面可以发挥巨大作用。针对CRAHN中SU之间的频谱切换,提出了一种基于不完善信道状态预测的增强目标信道选择方案。所提出的方案包括改进的帧结构,该帧结构增加了临时环境中SU之间的协调,并有助于在信道访问期间根据最短的作业优先原则组织SU。与现有的基于预测的频谱切换技术不同,该方案考虑了信道状态预测的准确性。通过允许它们在同一传输周期内竞争信道访问,可以补偿由于错误预测而受到影响的SU,从而使它们能够实现更高的吞吐量。所提出的方案已与现代频谱切换方案进行了比较,结果表明,由于冲突数量的减少,吞吐量和数据传输时间有了实质性的提高。

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