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A New Methodology for Photometric Validation in Vehicles Visual Interactive Systems

机译:车辆视觉交互系统中光度验证的新方法

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This work proposes a new methodology for automatically validating the internal lighting system of an automotive, i.e., assessing the visual quality of an instrument cluster (IC) from the point of view of the user. Although the evaluation of the visual quality of a component is a subjective matter, it is highly influenced by some photometric features of the component, such as the light intensity distribution. The methodology proposed here uses this last photometric feature to classify regions in images of instrument cluster components as homogenous or not, while also taking into account the user subjective evaluation. In order to achieve that, we acquired a set of 107 IC component images, and preprocessed them. These same components were evaluated by a user to identify their non-homogenous regions. Then, for each component region, we extracted a set of homogeneity descriptors. These descriptors were associated with the results of the user evaluation, and given to two machine learning algorithms. These algorithms were trained to identify a region as homogenous or not, and showed that the proposed methodology obtains precision above 95%.
机译:这项工作提出了一种自动验证汽车内部照明系统的新方法,即从用户的角度评估仪表盘(IC)的视觉质量。尽管评估组件的视觉质量是一个主观问题,但是它受组件的某些光度特性(例如光强度分布)的影响很大。此处提出的方法使用此最后的光度学特征将组合仪表组件图像中的区域分类为均匀或不均匀,同时还要考虑到用户的主观评估。为了实现这一目标,我们获取了一组107个IC组件图像,并对它们进行了预处理。用户对这些相同的组件进行了评估,以识别其非均匀区域。然后,对于每个组件区域,我们提取了一组同质性描述符。这些描述符与用户评估的结果相关联,并提供给两种机器学习算法。对这些算法进行了训练,以识别区域是否相同,并表明所提出的方法获得了95%以上的精度。

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