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Aesthetic perception of visual textures: a holistic exploration using texture analysis psychological experiment and perception modeling

机译:视觉纹理的审美感知:使用纹理分析心理实验和感知建模的整体探索

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摘要

Modeling human aesthetic perception of visual textures is important and valuable in numerous industrial domains, such as product design, architectural design, and decoration. Based on results from a semantic differential rating experiment, we modeled the relationship between low-level basic texture features and aesthetic properties involved in human aesthetic texture perception. First, we compute basic texture features from textural images using four classical methods. These features are neutral, objective, and independent of the socio-cultural context of the visual textures. Then, we conduct a semantic differential rating experiment to collect from evaluators their aesthetic perceptions of selected textural stimuli. In semantic differential rating experiment, eights pairs of aesthetic properties are chosen, which are strongly related to the socio-cultural context of the selected textures and to human emotions. They are easily understood and connected to everyday life. We propose a hierarchical feed-forward layer model of aesthetic texture perception and assign 8 pairs of aesthetic properties to different layers. Finally, we describe the generation of multiple linear and non-linear regression models for aesthetic prediction by taking dimensionality-reduced texture features and aesthetic properties of visual textures as dependent and independent variables, respectively. Our experimental results indicate that the relationships between each layer and its neighbors in the hierarchical feed-forward layer model of aesthetic texture perception can be fitted well by linear functions, and the models thus generated can successfully bridge the gap between computational texture features and aesthetic texture properties.
机译:对人类对视觉纹理的审美感知进行建模在许多工业领域(例如产品设计,建筑设计和装饰)中都是重要且有价值的。基于语义差异评级实验的结果,我们对低级基本纹理特征与人类审美纹理感知所涉及的审美属性之间的关系进行了建模。首先,我们使用四种经典方法从纹理图像计算基本纹理特征。这些特征是中性,客观的,并且与视觉纹理的社会文化环境无关。然后,我们进行语义差异评级实验,从评估人员那里收集他们对所选纹理刺激的审美观。在语义差异评级实验中,选择了八对美学特性,这些特性与所选纹理的社会文化背景以及人类情感密切相关。它们很容易理解,并与日常生活息息相关。我们提出了一种美感纹理感知的分层前馈层模型,并将8对美感属性分配给不同的层。最后,我们分别将维度降低的纹理特征和视觉纹理的美学属性分别作为因变量和自变量,描述了用于审美预测的多个线性和非线性回归模型的生成。我们的实验结果表明,通过线性函数可以很好地拟合审美纹理感知的分层前馈层模型中每一层及其相邻层之间的关系,并且由此生成的模型可以成功地弥合计算纹理特征与美学纹理之间的差距属性。

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