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No-Reference 3D Mesh Quality Assessment Based on Dihedral Angles Model and Support Vector Regression

机译:基于二面角模型和支持向量回归的无参考3D网格质量评估

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3D meshes are subject to various visual distortions during their transmission and geometrical processing. Several works have tried to evaluate the visual quality using either full reference or reduced reference approaches. However, these approaches require the presence of the reference mesh which is not available in such practical situations. In this paper, the main contribution lies in the design of a computational method to automatically predict the perceived mesh quality without reference and without knowing beforehand the distortion type. Following the no-reference (NR) quality assessment principle, the proposed method focuses only on the distorted mesh. Specifically, the dihedral angles are firstly computed as a surface roughness indexes and so a structural information descriptors. Then, a visual masking modulation is applied to this angles according to the main characteristics of the human visual system. The well known statistical Gamma model is used to fit the dihedral angles distribution. Finally, the estimated parameters of the model are learned to the support vector regression (SVR) in order to predict the quality score. Experimental results demonstrate the highly competitive performance of the proposed no-reference method relative to the most influential methods for mesh quality assessment.
机译:3D网格在其传输和几何处理期间会遭受各种视觉扭曲。几项工作尝试使用完全参考或简化参考方法来评估视觉质量。但是,这些方法需要存在参考网格,而在这种实际情况下是不可用的。在本文中,主要贡献在于计算方法的设计,该计算方法无需参考且无需事先知道变形类型即可自动预测感知的网格质量。遵循无参考(NR)质量评估原则,提出的方法仅关注变形的网格。具体地,首先将二面角计算为表面粗糙度指标,并因此计算结构信息描述符。然后,根据人类视觉系统的主要特征,将视觉遮罩调制应用于该角度。众所周知的统计伽玛模型用于拟合二面角分布。最后,将模型的估计参数学习到支持向量回归(SVR),以预测质量得分。实验结果表明,相对于最具影响力的网格质量评估方法而言,所提出的无参考方法具有极强的竞争力。

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