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Scalable video multicast in cognitive radio networks

机译:认知无线电网络中的可扩展视频多播

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We investigate the problem of scalable video multicast in emerging cognitive radio (CR) networks. Although considerable advances have been made in CR research, such important problems have not been well studied. Naturally, 'bandwidth hungry' multimedia applications are excellent candidates for fully capitalizing the potential of CRs. We propose a crosslayer optimization approach to multicast video in CR networks. Specifically, we consider an infrastructure-based CR network collocated with N primary networks and model CR video multicast over the N channels as a mixed integer nonlinear programming (MINLP) problem. The objective is three-fold: to optimize the overall received video quality; to achieve proportional fairness among multicast users; and to keep the interference to primary users below a prescribed threshold. We propose a sequential fixing algorithm and a greedy algorithm to solve the MINLP, while the latter has low complexity and proven optimality gap. Our simulations with MPEG-4 fine grained scalability (FGS) video demonstrate the efficacy and superior performance of the proposed algorithms.
机译:我们调查新兴的认知无线电(CR)网络中的可伸缩视频多播问题。尽管CR研究取得了长足的进步,但尚未对这些重要问题进行深入研究。自然,“带宽匮乏”的多媒体应用程序是充分利用CR潜力的绝佳选择。我们提出了一种跨层优化方法,用于CR网络中的多播视频。具体来说,我们考虑与N个主要网络并置的基于基础架构的CR网络,并将在N个通道上的CR视频多播建模为混合整数非线性编程(MINLP)问题。目标是三个方面:优化整体接收视频质量;实现多播用户之间的比例公平;并使对主要用户的干扰保持在规定的阈值以下。我们提出了一种顺序固定算法和一个贪婪算法来求解MINLP,而后者具有较低的复杂度和最优的差距。我们对MPEG-4细粒度可伸缩性(FGS)视频的仿真证明了所提出算法的有效性和优越性能。

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