首页> 外文会议>IEEE International Conference on Acoustics Speech and Signal;ICASSP 2010 >Collaborative spectrum sensing from sparse observations using matrix completion for cognitive radio networks
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Collaborative spectrum sensing from sparse observations using matrix completion for cognitive radio networks

机译:稀疏观测的协作频谱感测,使用认知无线电网络的矩阵完成

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In cognitive radio, spectrum sensing is a key component to detect spectrum holes (i.e., channels not used by any primary users). Collaborative spectrum sensing among the cognitive radio nodes is expected to improve the ability of checking complete spectrum usage states. Unfortunately, due to power limitation and channel fading, available channel sensing information is far from being sufficient to tell the unoccupied channels directly. Aiming at breaking this bottleneck, we apply recent matrix completion techniques to greatly reduce the sensing information needed. We formulate the collaborative sensing problem as a matrix completion subproblem and a joint-sparsity reconstruction subproblem. Results of numerical simulations that validated the effectiveness and robustness of the proposed approach are presented. In particular, in noiseless cases, when number of primary user is small, exact detection was obtained with no more than 8% of the complete sensing information, whilst as number of primary user increases, to achieve a detection rate of 95.55%, the required information percentage was merely 16.8%.
机译:在认知无线电中,频谱感测是检测频谱空洞(即,任何主要用户未使用的信道)的关键组件。认知无线电节点之间的协作频谱感知有望提高检查完整频谱使用状态的能力。不幸的是,由于功率限制和信道衰落,可用的信道感测信息远远不足以直接告诉未占用的信道。为了克服这一瓶颈,我们应用了最新的矩阵完成技术来大大减少所需的传感信息。我们将协作感知问题表述为矩阵完成子问题和联合稀疏重建子问题。数值仿真结果验证了该方法的有效性和鲁棒性。尤其是在无噪声的情况下,当主要用户数量少时,获得的准确检测信息不超过完整感应信息的8%,而随着主要用户数量的增加,要达到95.55%的检测率,信息比例仅为16.8%。

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