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Clustering Algorithm-Based Data Fusion Scheme for Robust Cooperative Spectrum Sensing

机译:基于聚类算法的鲁棒协作谱检测数据融合方案

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摘要

In a centralized cooperative spectrum sensing (CSS) system, it is vulnerable to malicious users (MUs) sending fraudulent sensing data, which can severely degrade the performance of CSS system. To solve this problem, we propose sensing data fusion schemes based on K-medoids and Mean-shift clustering algorithms to resist the MUs sending fraudulent sensing data in this paper. The cognitive users (CUs) send their local energy vector (EVs) to the fusion center which fuses these EVs as an EV with robustness by the proposed data fusion method. Specifically, this method takes a Medoids of all EVs as an initial value and searches for a high-density EV by iteratively as a representative statistical feature which is robust to malicious EVs from MUs. It does not need to distinguish MUs from CUs in the whole CSS process and considers constraints imposed by the CSS system such as the lack of information of PU and the number of MUs. Furthermore, we propose a global decision framework based on fast K-medoids or Mean-shift clustering algorithm, which is unaware of the distributions of primary user (PU) signal and environment noise. It is worth noting that this framework can avoid the derivation of threshold. The simulation results reflect the robustness of our proposed CSS scheme.
机译:在集中式协作频谱传感(CSS)系统中,它易于发送恶意用户(MU)发送欺诈性感测数据,这可能会严重降低CSS系统的性能。为了解决这个问题,我们提出了基于K-METOIDS和平均移位聚类算法的传感数据融合方案,以抵抗本文中发送欺诈性传感数据的MU。认知用户(CU)将其本地能量向量(EVS)发送到融合中心,通过所提出的数据融合方法将这些EV融合为EV作为EV。具体地,该方法将所有EV的METOIDS作为初始值,并且通过作为代表性的统计特征迭代地搜索高密度EV,这对于来自MUS的恶意EV是鲁棒性的。它不需要将MUS与整个CSS流程中的CU分开,并考虑CSS系统所施加的限制,例如缺乏PU和MUS数量。此外,我们提出了一种基于快速k-medoids或平均移位聚类算法的全局决策框架,这是不知道主用户(PU)信号和环境噪声的分布。值得注意的是,此框架可以避免阈值的推导。仿真结果反映了我们提出的CSS计划的稳健性。

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