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Detecting anomalous spectrum usage in dynamic spectrum access networks

机译:检测动态频谱访问网络中的异常频谱使用情况

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摘要

Dynamic spectrum access has been proposed as a means to share scarce radio resources, and requires devices to follow protocols that access spectrum resources in a proper, disciplined manner. For a cognitive radio network to achieve this goal, spectrum policies and the ability to enforce them are necessary. Detection of an unauthorized (anomalous) usage is one of the critical issues in spectrum etiquette enforcement. In this paper, we present a network structure for dynamic spectrum access and formulate the anomalous usage detection problem using statistical significance testing. The detection problem investigated considers two cases, namely, the authorized (primary) transmitter is (ⅰ) mobile and (ⅱ) fixed. We propose a detection scheme for each case by exploiting the spatial pattern of received signal energy across a network of sensors. Analytical models are formulated when the distribution of the energy measurements is given and, due to the intractability of the general problem, we present an algorithm using machine learning techniques to solve the general case when the statistics of the energy measurements are unknown. Our simulation results show that our approaches can effectively detect unauthorized spectrum usage with a detection probability above 0.9 while keeping the false alarm rate less than 0.1 when only one unauthorized radio is present, and the detection probability is even higher for more unauthorized radios.
机译:已经提出了动态频谱访问作为共享稀缺无线电资源的手段,并且要求设备遵循以适当,规范的方式访问频谱资源的协议。为了使认知无线电网络实现此目标,频谱策略及其执行能力是必不可少的。检测未经授权的(异常)使用情况是频谱礼仪执行中的关键问题之一。在本文中,我们提出了一种用于动态频谱访问的网络结构,并使用统计显着性检验来制定异常使用检测问题。研究的检测问题考虑了两种情况,即授权的(主)发射机是(ⅰ)移动的和(ⅱ)是固定的。我们通过利用跨传感器网络的接收信号能量的空间模式,为每种情况提出一种检测方案。当给出能量测量的分布时,将建立分析模型,并且由于一般问题的棘手性,我们提出了一种使用机器学习技术的算法,可以在能量测量的统计数据未知时解决一般情况。我们的仿真结果表明,当仅存在一个未授权的无线电时,我们的方法可以有效地检测未授权频谱的使用,检测概率高于0.9,同时将误报率保持在0.1以下,对于更多的未授权无线电,检测概率甚至更高。

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