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首页> 外文期刊>Journal of signal processing systems for signal, image, and video technology >Visual Quality Assessment of Video and Image Sequences-A Human-based Approach
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Visual Quality Assessment of Video and Image Sequences-A Human-based Approach

机译:视频和图像序列的视觉质量评估-一种基于人的方法

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摘要

Most of the current quality assessment techniques interpret an image quality as a measure of its fidelity with another reference image, assuming the availability of that "perfect" image. It has been the concern of many researchers around the world to algorithmically assess the quality of image sequences based on human visual perception. This paper presents a novel technique for quantitatively assessing the quality of image sequences without the need for a reference image and in a way that precisely correlates to human judgement on quality. This research is a part of a larger framework that incorporates multi-objective optimisation algorithms to optimise the quality metrics of compressed videos acquired by autonomous vehicles and transmitted over low-bandwidth communication channels. Our system was trained on a dataset that involved 700 videos of 5 different categories. We validate the performance of our model and show that it highly correlates to the human subjective quality assessment.
机译:当前大多数质量评估技术都将图像质量解释为与其他参考图像保真度的度量,并假定该“完美”图像的可用性。基于人类的视觉感知,以算法评估图像序列的质量一直是世界各地许多研究人员的关注点。本文提出了一种无需参考图像即可定量评估图像序列质量的新颖技术,并且该方法与人类对质量的判断精确相关。这项研究是更大框架的一部分,该框架结合了多目标优化算法,以优化由自动驾驶汽车获取并通过低带宽通信信道传输的压缩视频的质量指标。我们的系统在包含5个不同类别的700个视频的数据集上进行了训练。我们验证了模型的性能,并表明它与人类主观质量评估高度相关。

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