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Novel Spatio-Temporal Structural Information Based Video Quality Metric

机译:基于新型时空结构信息的视频质量指标

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Video quality assessment (VQA) is very important for many video processing applications, e.g., compression, archiving, restoration, and enhancement. An ideal video quality metric should achieve consistency between video distortion prediction and psychological perception of human visual system. Different from the quality assessment of single images, motion information and temporal distortion should be carefully considered for VQA. Most of previous VQA algorithms deal with the motion information through two ways: either incorporating motion characteristics into a temporal weighting scheme to account for their affects on the spatial distortion, or modeling the temporal distortion and spatial distortion independently. Optical flows need to be estimated in the two ways. In this paper, we propose a different methodology to deal with the motion information. Instead of explicitly calculating the optical flow and independently modeling the temporal distortion, both the spatial edge features and temporal motion characteristics are accounted for by some structural features in the localized spacetime regions. We propose to represent the structural information by two descriptors extracted from the 3-D structure tensors, which are the largest eigenvalue as well as its corresponding eigenvector. Experimental results on LIVE database and VQEG FR-TV Phase-I database show that the proposed VQA metric is competitive with state-of-the-art VQA metrics, while keeping relatively low computing complexity.
机译:视频质量评估(VQA)对于许多视频处理应用(例如压缩,存档,恢复和增强)非常重要。理想的视频质量度量标准应在视频失真预测和人类视觉系统的心理感知之间实现一致性。与单张图像的质量评估不同,对于VQA,应仔细考虑运动信息和时间失真。大多数以前的VQA算法通过两种方式处理运动信息:将运动特征合并到时间加权方案中以说明它们对空间失真的影响,或者独立地对时间失真和空间失真进行建模。需要以两种方式估算光流量。在本文中,我们提出了一种不同的方法来处理运动信息。代替显式地计算光流并独立地对时间畸变建模,空间边缘特征和时间运动特征都由局部时空区域中的一些结构特征来解释。我们建议用从3-D结构张量中提取的两个描述符来表示结构信息,这两个描述符是最大的特征值及其对应的特征向量。在LIVE数据库和VQEG FR-TV Phase-I数据库上进行的实验结果表明,所提出的VQA指标与最新的VQA指标具有竞争力,同时保持了较低的计算复杂性。

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