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A harmonic means pooling strategy for structural similarity index measurement in image quality assessment

机译:用于图像质量评估中结构相似性指标测量的谐波均值合并策略

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摘要

Structural similarity index measurement (SSIM) is one of the most well known method in full reference image quality assessment metrics (FR-IQA). In this paper, a novel pooling strategy based on harmonic mean is proposed to enhance the performance of SSIM. Instead of arithmetic mean, the proposed pooling by harmonic mean tends to emphasize the contributions from the local severely distorted regions or pixels in the definition of assessment function using reciprocal transformation. The proposed object function has higher correlation with human perception, which is mostly affected with the regions having severely distorted points or regions. In addition, salience information is introduced to the object function for a better consideration of subject visual attention. The proposed pooling strategy is applied to classical SSIM and its variants, GSSIM and FSIM. The experimental results have demonstrated that the FR-IQA metrics with proposed pooling strategy have better performances compared to the standard versions, especially on the images with small but seriously distorted regions.
机译:结构相似性指数测量(SSIM)是全参考图像质量评估指标(FR-IQA)中最著名的方法之一。为了提高SSIM的性能,本文提出了一种基于谐波均值的池化策略。提出的用谐波均值代替算术平均值的方法倾向于在使用倒数变换的评估函数定义中强调来自局部严重失真的区域或像素的贡献。所提出的目标函数与人的感知具有更高的相关性,这主要受点或区域严重失真的区域的影响。另外,显着性信息被引入到对象功能中,以更好地考虑对象的视觉注意力。拟议的合并策略适用于经典的SSIM及其变体GSSIM和FSIM。实验结果表明,与标准版本相比,具有建议的合并策略的FR-IQA度量具有更好的性能,特别是在区域较小但失真严重的图像上。

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