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Automated generation of hierarchic image database with hybrid method of ontology and GMM-based image clustering

机译:基于本体和基于GMM的图像聚类混合方法自动生成层次图像数据库

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In the field of computer vision, “generic object recognition” is one of the most important topics. Generic object recognition needs three types research: feature extraction, pattern recognition, and database preparation. This paper targets at database preparation, and proposes a method to automatically generate hierarchic image database. The proposed method considers both object semantic and visual features in images. In the proposed method, semantic is covered by ontology framework, and visual similarity is covered by images clustering based on Gaussian Mixture Model. The image databases generated by the proposed method covered over 4,800 concepts (where 152 concepts have more than 100 images) and its structure was hierarchic. Through the subjective evaluation experiments, whether images in the database were correctly mapped or not was examined. The results of the evaluation experiments showed over 84% precision in average. It is suggested that the generated image database was sufficiently practicable as learning database for generic object recognition.
机译:在计算机视觉领域,“通用对象识别”是最重要的主题之一。通用对象识别需要三种类型的研究:特征提取,模式识别和数据库准备。本文针对数据库的准备,提出了一种自动生成层次图像数据库的方法。所提出的方法同时考虑了图像中的对象语义和视觉特征。该方法通过本体框架覆盖语义,在基于高斯混合模型的图像聚类中覆盖视觉相似度。通过所提出的方法生成的图像数据库涵盖了4,800多个概念(其中152个概念具有100多个图像),并且其结构是分层的。通过主观评估实验,检查了数据库中的图像是否正确映射。评估实验的结果显示平均精度超过84%。建议将生成的图像数据库作为通用对象识别的学习数据库具有足够的实用性。

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