基于匹配理论的认知无线电网络联盟形成算法性能分析

M. Tahir, M. H. Habaebi, M. R. Islam
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摘要

在加性高斯白噪声(AWGN)信道中,通过在认知无线电用户之间形成联盟来提高认知无线电网络的吞吐量。对于利用匹配理论形成联盟,我们分析了两种算法,即gale - shaely算法和片面稳定匹配算法。第一种联合算法采用著名的gale shape算法实现认知无线电之间的合作,进行频谱检测和共享。每个认知无线电为附近的其他无线电准备一个合作偏好列表,从而形成一个联盟。第二种算法基于片面匹配理论,是Gale-Shapely算法的一种变体,但要实现稳定的合作,必须满足一定的条件。该过程类似于第一个算法(即。形成偏好列表,然后向其他认知无线电提供合作),但不同之处在于认知无线电之间如何形成联盟。最后,我们利用仿真研究了算法的各个方面并分析了它们的性能。提出的算法改进了频谱检测,提高了频谱效率。
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Performance analysis of coalition formation algorithms based on matching theory for cognitive radio networks
We consider the problem of increasing the throughput in cognitive radio networks by forming coalitions among cognitive radio user in additive white Gaussian noise (AWGN) channel. For coalition formation using matching theory, we analyze two algorithms, namely Gale-Shapely algorithm and one-sided stable matching algorithm. For the first algorithm for coalition formation, well-known gale shapely algorithm is used to achieve cooperation among the cognitive radios for spectrum detection and sharing. Each cognitive radio prepares a preference list of other radios in the vicinity for cooperation and hence to form a coalition formation. The second algorithm is based one-sided matching theory which is a variant of the Gale-Shapely algorithm, however, to achieve a stable cooperation, certain criteria must be satisfied. The procedure is similar to the first algorithm (.i.e. formation of preference list and then making offers to other cognitive radio for cooperation) however the difference is in how the coalition formation takes place among the cognitive radios. Finally, using simulations we investigate various aspects of the algorithms and analyse their performance. The proposed algorithms result in improved spectrum detection as well as increasing the spectrum efficiency.
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