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Measuring and Predicting Visual Fidelity

机译:测量和预测视觉保真度

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This paper is a study of techniques for measuring and predicting visual fidelity. As visual stimuli we use polygonal models, and vary their fidelity with two different model simplification algorithms. We also group the stimuli into two object types: animals and man made artifacts. We examine three different experimental techniques for measuring these fidelity changes: naming times, ratings, and preferences. All the measures were sensitive to the type of simplification and level of simplification. However, the measures differed from one another in their response to object type. We also examine several automatic techniques for predicting these experimental measures, including techniques based on images and on the models themselves. Automatic measures of fidelity were successful at predicting experimental ratings, less successful at predicting preferences, and largely failures at predicting naming times. We conclude with suggestions for use and improvement of the experimental and automatic measures of visual fidelity.
机译:本文是对测量和预测视觉保真度的技术的研究。作为视觉刺激,我们使用多边形模型,并用两种不同的模型简化算法改变他们的忠诚。我们还将刺激分为两种物体类型:动物和人为伪影。我们研究了三种不同的实验技术来测量这些保真度变化:命名时间,评级和偏好。所有措施对简化和简化水平敏感。但是,措施在对对象类型的响应中彼此不同。我们还检查了几种用于预测这些实验措施的自动技术,包括基于图像和模型本身的技术。在预测实验额定值时,保真度的自动措施是成功的,在预测偏好方面取得更少成功,并且在预测命名时期在很大程度上失败。我们结论了建议,利用和改进视觉保真度的实验和自动测量。

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