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On MMD-Based Secure Fusion Strategy for Robust Cooperative Spectrum Sensing

机译:基于MMD的鲁棒协作频谱感知安全融合策略

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摘要

Collaborative spectrum sensing (CSS) in cognitive radio-based networks (CRNs) is vulnerable to spectrum sensing data falsification (SSDF) attack. Existing defense mechanisms are commonly subject to major limitations with unrealistic assumptions which can be easily violated in future wireless networks. Such assumptions include the number of honest users is in majority, the attackers’ flip rates are identical and fixed, the adoption of hard decision approach in the fusion strategy and only TV sets are considered as the primary users to be protected. Essentially, all existing representative schemes utilize certain low-dimensional human-observed metric to distinguish malicious users and honest users based on domain knowledge. Therefore, these defense mechanisms cannot perform properly under certain condition, such as sensing reports with different distributions but have equal mean and variance. In this paper, we propose a secure fusion strategy which adopts “soft decision” method and can distinguish malicious users and honest users under any distribution of sensing reports using maximum mean discrepancy (MMD). Our proposed CSS scheme is suitable for general CRN application scenarios. The simulation results reflect the effects of different kernel functions and window size on the system performance, and show our proposed defense mechanism outperforms the existing works.
机译:基于认知无线电的网络(CRN)中的协作频谱感知(CSS)容易受到频谱感知数据篡改(SSDF)攻击。现有的防御机制通常受到不切实际的假设的主要限制,在未来的无线网络中很容易违反这些假设。这样的假设包括诚实用户的数量占多数,攻击者的翻转率是相同且固定的,融合策略中采用硬性决策方法以及仅将电视机视为要保护的主要用户。本质上,所有现有的代表性方案都利用某些低维的人类观察指标来基于域知识来区分恶意用户和诚实用户。因此,这些防御机制无法在特定条件下正常运行,例如感知具有不同分布的报告,但均值和方差相等。在本文中,我们提出了一种安全融合策略,该策略采用“软决策”方法,可以使用最大平均差异(MMD)在任何感知报告分布下区分恶意用户和诚实用户。我们提出的CSS方案适用于一般CRN应用方案。仿真结果反映了不同内核功能和窗口大小对系统性能的影响,并表明我们提出的防御机制优于现有工作。

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