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Image analysis for video artifact estimation and measurement

机译:用于视频伪像估计和测量的图像分析

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摘要

The ultimate goal of video compression is to maximize picture quality while minimizing bandwidth requirement. In most video storage and communication applications, the constraints are often expressed as limitation in delivery bandwidth or storage capacity. The objective of video encoder development is, therefore, to minimize the amount of distortions introduced by video compression and transmission. As an enabling technology, measurement of compression distortions and quality impact to end-users is crucial to video encoder optimization. While the field is developing quickly, there have been two different paradigms for video quality measurement that are being studied, picture quality models that use reference pictures, and the models that do not. An issue common to picture quality measurement in both paradigms is to obtain accurate measurement of picture distortions. In this paper, we review the requirements of these two measurement paradigms and propose two image analysis methods that address some specific issues of picture distortion measurement. First we describe a fast video alignment approach necessary for picture distortion measurement models that require references. In the rest of the paper, we propose a blur estimation scheme to measure blurring degradation introduced by video compression and imaging systems. We will then review its reference-free distortion measurement performance using data from two experiments.
机译:视频压缩的最终目标是在最大程度地降低带宽要求的同时,最大化图像质量。在大多数视频存储和通信应用中,约束通常表示为传送带宽或存储容量的限制。因此,视频编码器开发的目的是最小化由视频压缩和传输引入的失真量。作为一种使能技术,测量压缩失真和对最终用户的质量影响对于视频编码器优化至关重要。在该领域快速发展的同时,正在研究两种不同的视频质量测量范例,即使用参考图片的图片质量模型和不使用参考图片的模型。在两种范式中,图像质量测量的共同问题是获得图像失真的准确测量。在本文中,我们回顾了这两种测量范例的要求,并提出了两种图像分析方法来解决图片失真测量的一些特定问题。首先,我们描述了需要参考的图片失真测量模型所必需的快速视频对齐方法。在本文的其余部分中,我们提出一种模糊估计方案,以测量由视频压缩和成像系统引入的模糊降级。然后,我们将使用来自两个实验的数据来回顾其无参考失真测量性能。

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