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Maximum Mean Discrepancy Based Secure Fusion Strategy for Robust Cooperative Spectrum Sensing

机译:基于最大平均差异安全融合策略,用于鲁棒协作频谱感应

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Collaborative spectrum sensing (CSS) in Cognitive Radio based Networks (CRNs) is vulnerable to Spectrum Sensing Data Falsification (SSDF) attack. Many existing defense mechanisms assume the number of malicious users are in minority or the attackers' flip rates are identical and fixed. However, such assumption doesn't hold when some intelligent attacks such as Sybil attack are launched successfully, wherein one dedicated attacker can pretend to be multiple attackers. Besides, most existing approaches adopting "hard decision" approach by identifying the attackers first and ignore their sensing reports in the fusion operation. Thus the overall system performance is degraded since some intelligent attackers' sensing reports are still possible to be genuine. On the other hand, representative existing work using "soft decision" method still cannot distinguish the malicious users and honest users correctly under certain condition. The defense mechanism doesn't perform properly for the case when the distributions of two sensing reports are different 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 any general CRN application scenarios. The simulation results show our proposed defense mechanism outperforms the existing works.
机译:认知无线电网络(CRNS)中的协作频谱感测(CSS)容易受到频谱感测数据伪造(SSDF)攻击。许多现有的防御机制假设恶意用户数量少数群体或攻击者的翻转速率是相同的和固定的。然而,当成功启动Sybil攻击的一些智能攻击时,这种假设不会保持,其中一个专用攻击者可以假装是多个攻击者。此外,通过识别攻击者首先识别攻击者并忽略融合操作中的传感报告,大多数现有方法采用“硬决策”方法。因此,由于一些智能攻击者的传感报告仍然可以是真实的,因此整体系统性能降低。另一方面,使用“软判决”方法的代表现有工作仍然无法在某些情况下正确地区分恶意用户和诚实的用户。当两个传感报告的分布不同但具有相同的平均值和方差时,防御机制不会正确执行。在本文中,我们提出了一种充分的安全融合策略,采用“软决策”方法,可以使用最大均值(MMD)在传感报告的任何分布下区分恶意用户和诚实的用户。我们拟议的CSS计划适用于任何一般的CRN应用方案。仿真结果表明我们所提出的防御机制优于现有的作品。

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