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No Reference Perceptual Quality Metrics: Approaches and limitations

机译:没有参考感知质量指标:方法和限制

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To predict subjective quality it is necessary to develop and validate approaches that accurately predict video quality. For perceptual quality models, developers have implemented methods that utilise information from both the original and the processed signals (full reference and reduced reference methods). For many practical applications, no reference (NR) methods are required. It has been a major challenge for developers to produce no reference methods that attain the necessary predictive performance for the methods to be deployed by industry. In this paper, we present a comparison between no reference methods operating on either the decoded picture information alone or using a bit-stream / decoded picture hybrid analysis approach. Two NR models are introduced: one using decoded picture information only; the other using a hybrid approach. Validation data obtained from subjective quality tests are used to examine the predictive performance of both models. The strengths and limitations of the two NR methods are discussed.
机译:为了预测主观质量,有必要开发和验证准确预测视频质量的方法。对于感知质量模型,开发人员已经实现了利用原件和处理信号的信息的方法(完整参考和减少的参考方法)。对于许多实际应用,不需要参考(NR)方法。开发人员对开发人员提供了一个主要挑战,不得生成参考方法,以获得由行业部署的方法的必要预测性能。在本文中,我们在单独或使用比特流/解码图像混合分析方法之间没有在解码图像信息上操作的参考方法之间的比较。介绍了两个NR模型:仅使用解码图片信息;另一个使用混合方法。从主观质量测试获得的验证数据用于检查两种模型的预测性能。讨论了两种NR方法的强度和局限性。

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