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Automatic identification of experts in visual arts: The use of transitions between regions of interest in the image

机译:自动识别视觉艺术专家:使用图像中感兴趣区域之间的过渡

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The aim of this paper is to investigate the use of oculography signals for the recognition of experts in visual arts. We focused our attention on the number of sight transitions between characteristic image areas (ROIs). In the experiments we used oculographic data recorded at the Department of Experimental Psychology at the Catholic University of Lublin for 29 images and 34 users. The EM method was used to determine the ROIs, and the BIC criterion for determining the optimal number of clusters. The selected values of the matrix of transitions were used for learning and testing of the classifier. Very rigorous testing of the proposed algorithm was carried out approaching the actual operating conditions of the expert system. The presented results indicate that for some images there is a chance of identifying experts in the field of visual arts using transitions as oculographic features.
机译:本文的目的是研究眼动信号技术在视觉艺术领域的专家认可。我们将注意力集中在特征图像区域(ROI)之间的视线过渡数量上。在实验中,我们使用了卢布林天主教大学实验心理学系记录的眼图数据,获得了29张图像和34位用户。 EM方法用于确定ROI,BIC标准用于确定最佳群集数。转换矩阵的选定值用于分类器的学习和测试。接近专家系统的实际操作条件,对所提出的算法进行了非常严格的测试。呈现的结果表明,对于某些图像,可以使用过渡作为眼动特征来识别视觉艺术领域的专家。

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