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Channel Allocation Based on Content Characteristics for Video Transmission in Time-Domain-Based Multichannel Cognitive Radio Networks

机译:基于内容特征的时域多信道认知无线电网络中视频传输的信道分配

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This paper proposes a method for channel allocation based on video content requirements and the quality of the available channels in cognitive radio networks (CRNs). Our objective is to save network bandwidth and achieve high-quality video delivery. In this method, the content is divided into clusters based on scene complexity and PSNR. To allocate channel to the clusters over multichannel CRNs, we first need to identify the licensee’s activity and then maximize the opportunistic usage accordingly. Therefore, we classify short and long time transmission opportunities based on the licensee’s activities using a Bayesian nonparametric inference model. Furthermore, to prevent transmission interruption, we consider the underlay mode for transmission of the clusters with a lower bitrate. Next, we map the available spectrum opportunities to the content clusters according to both the quality of the channels and the requirements of the clusters. Then, a distortion optimization model is constructed according to the network transmission mechanism. Finally, to maximize the average quality of the delivered video, an optimization problem is defined to determine the best bitrate for each cluster by maximizing the sum of the logarithms of the frame rates. Our extensive simulation results prove the superior performance of the proposed method in terms of spectrum efficiency and the quality of delivered video.
机译:本文提出了一种基于视频内容需求和认知无线电网络(CRN)中可用信道质量的信道分配方法。我们的目标是节省网络带宽并实现高质量的视频传输。在这种方法中,根据场景复杂度和PSNR将内容分为几类。要在多渠道CRN上为集群分配渠道,我们首先需要确定被许可方的活动,然后相应地最大限度地利用机会。因此,我们使用贝叶斯非参数推断模型根据被许可人的活动对短期和长期传播机会进行分类。此外,为了防止传输中断,我们考虑了以较低比特率传输簇的底层模式。接下来,我们根据通道质量和群集需求将可用频谱机会映射到内容群集。然后,根据网络传输机制构建失真优化模型。最后,为了最大化所传送视频的平均质量,定义了一个优化问题,以通过最大化帧速率的对数之和来确定每个群集的最佳比特率。我们广泛的仿真结果证明了该方法在频谱效率和交付的视频质量方面的优越性能。

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