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首页> 外文期刊>IEEE transactions on industrial informatics >Referenceless Quality Evaluation of Tone-Mapped HDR and Multiexposure Fused Images
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Referenceless Quality Evaluation of Tone-Mapped HDR and Multiexposure Fused Images

机译:转印音调HDR和Multiexposure融合图像的质量评估

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摘要

Nowadays, the standard dynamic range (SDR) image acquired at a fixed exposure exposes weakness in portraying fine-grained details of real scenes. The high dynamic range (HDR) image and other types of SDR images generated by multiexposure fusion techniques provide us new choices for scene representation. To display on SDR screens, an HDR image must be tone-mapped to an SDR one. Since different tone-mapping/fusion algorithms produce images with varying visual quality levels, it naturally desires a quality evaluation model for comparison. This article proposes an effective model in the absence of the reference image. By analyzing the characteristics of tone-mapped HDR and multiexposure fused images, we first extract multiple quality-sensitive features from the following aspects: 1) colorfulness; 2) exposure; and 3) naturalness. Then, the model is built by bridging all extracted features and associated subjective ratings via support vector regression. Extensive experiments on publicly available databases prove the superiority of our model over the state-of-the-art referenceless quality evaluation ones.
机译:如今,在固定曝光中获取的标准动态范围(SDR)图像暴露在描绘真实场景细节细节时的弱点。 Multiexposure融合技术生成的高动态范围(HDR)图像和其他类型的SDR图像为我们提供了场景表示的新选择。要在SDR屏幕上显示,HDR图像必须音调为SDR映射。由于不同的色调映射/融合算法产生具有不同视觉质量水平的图像,因此它自然地希望进行比较的质量评估模型。本文在没有参考图像的情况下提出了有效模型。通过分析色调映射的HDR和Multi®Posure融合图像的特点,我们首先从以下几个方面提取多种质量敏感的特征:1)炫彩性; 2)曝光; 3)自然。然后,通过支持向量回归桥接所有提取的特征和相关主体额定值来构建该模型。关于公开数据库的广泛实验证明了我们模型的优势,在最先进的推荐质量评估中。

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