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Rate and distortion modeling of medium grain scalable video coding

机译:中谷可伸缩视频编码的速率和失真建模

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Scalability in video coding is becoming the primary choice for providing quality of service (QoS) guarantees in wireless video communication. In this paper, we develop real-time rate and distortion prediction models for medium grained scalable (MGS) coded video streams. These models allow mobile video encoders to predict the packet size and corresponding distortion of a video frame using only the mean absolute difference (MAD) of the motion prediction and the quantization parameter (QP). The prediction of rate and distortion measures can be used in devices with cross layer optimization capabilities to choose the combination of base and enhancement layer packets that deliver the best picture quality given channel quality information. Performance evaluations demonstrate that our models accurately predict the size and distortion of base and enhancement layer MGS packets.
机译:视频编码中的可扩展性正在成为提供无线视频通信中服务质量(QoS)保证的主要选择。在本文中,我们开发了用于介质粒度可扩展(MGS)编码视频流的实时速率和失真预测模型。这些模型允许移动视频编码器仅使用运动预测的平均绝对差(MAD)和量化参数(QP)来预测视频帧的分组大小和相应的失真。速率和失真措施的预测可以在具有跨层优化能力的设备中使用,以便选择提供最佳图像质量给定信道质量信息的基础和增强层分组的组合。性能评估表明,我们的模型准确地预测基础和增强层MGS分组的尺寸和失真。

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