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Objective quality assessment of MPEG-2 video streams by using CBP neural networks

机译:使用CBP神经网络的MPEG-2视频流的客观质量评估

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The increasing use of compression standards in broadcasting digital TV has raised the need for established criteria to measure perceived quality. Novel methods must take into account the specific artifacts introduced by digital compression techniques. This paper presents a methodology using circular backpropagation (CBP) neural networks for the objective quality assessment of motion picture expert group (MPEG) video streams. Objective features are continuously extracted from compressed video streams on a frame-by-frame basis; they feed the CBP network estimating the corresponding perceived quality. The resulting adaptive modeling of subjective perception supports a real-time system for monitoring displayed video quality. The overall system mimics perception but does not require an analytical model of the underlying physical phenomenon. The ability to process compressed video streams represents a crucial advantage over existing approaches, as avoiding the decoding process greatly enhances the system's real-time performance. Experimental evidence confirmed the approach validity. The system was tested on real test videos; they included different contents ranging from fiction to sport. The neural model provided a satisfactory, continuous-time approximation for actual scoring curves, which was validated statistically in terms of confidence analysis. As expected, videos with slow-varying contents such as fiction featured the best performances.
机译:在广播数字电视中压缩标准的使用越来越多,因此需要建立确定的标准来测量感知质量。新颖的方法必须考虑数字压缩技术引入的特定伪像。本文提出了一种使用循环反向传播(CBP)神经网络进行运动图像专家组(MPEG)视频流客观质量评估的方法。从压缩视频流中逐帧连续提取目标特征;他们输入CBP网络以估计相应的感知质量。所得的主观感知的自适应建模支持用于监视显示的视频质量的实时系统。整个系统模仿感知,但不需要基础物理现象的分析模型。处理压缩视频流的能力代表了优于现有方法的关键优势,因为避免了解码过程,极大地提高了系统的实时性能。实验证据证实了该方法的有效性。该系统已在真实的测试视频上进行了测试;它们包括从小说到体育的不同内容。该神经模型为实际得分曲线提供了令人满意的连续时间逼近,并通过置信度分析进行了统计验证。不出所料,诸如小说等内容缓慢变化的视频表现最佳。

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