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A Poisson Hidden Markov Model for Multiview Video Traffic

机译:一种用于多视图视频流量的泊松隐马尔可夫模型

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摘要

Multiview video has recently emerged as a means to improve user experience in novel multimedia services. We propose a new stochastic model to characterize the traffic generated by a Multiview Video Coding (MVC) variable bit-rate source. To this aim, we resort to a Poisson hidden Markov model (P-HMM), in which the first (hidden) layer represents the evolution of the video activity and the second layer represents the frame sizes of the multiple encoded views. We propose a method for estimating the model parameters in long MVC sequences. We then present extensive numerical simulations assessing the model's ability to produce traffic with realistic characteristics for a general class of MVC sequences. We then extend our framework to network applications where we show that our model is able to accurately describe the sender and receiver buffers behavior in MVC transmission. Finally, we derive a model of user behavior for interactive view selection, which, in conjunction with our traffic model, is able to accurately predict actual network load in interactive multiview services.
机译:最近,多视图视频已经出现,可以改善新型多媒体服务中的用户体验。我们提出了一种新的随机模型来表征由多视图视频编码(MVC)可变比特率源生成的流量。为此,我们求助于泊松隐马尔可夫模型(P-HMM),其中第一(隐藏)层代表视频活动的演变,第二层代表多个编码视图的帧大小。我们提出了一种用于估计长MVC序列中模型参数的方法。然后,我们将提供广泛的数值模拟,以评估模型针对一般类别的MVC序列产生具有实际特征的流量的能力。然后,我们将框架扩展到网络应用程序,在网络应用程序中,我们证明了我们的模型能够准确描述MVC传输中的发送方和接收方缓冲区行为。最后,我们导出了用于交互式视图选择的用户行为模型,该模型与我们的流量模型一起能够准确预测交互式多视图服务中的实际网络负载。

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