一种可训练的卡通人物图像检索系统

M. Haseyama, Atsushi Matsumura
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引用次数: 4

摘要

本文提出了一种从数据库或网络中检索卡通人物图像的新方法。在该方法中,将图像的部分特征定义为区域和方面,作为识别卡通人物图像的关键。通过使用这些特征计算查询卡通人物图像与数据库中图像之间的相似度。基于相似性,从数据库中识别和检索与查询图像相同或相似的卡通图像。此外,我们的方法采用了一种训练方案来体现用户的主观性。训练通过根据用户的偏好和行为分配更多的权重来强调重要的区域或方面,例如选择想要的图像或图像的区域。这些过程使检索更加有效和准确。实验结果验证了该方法的有效性和检索精度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A trainable retrieval system for cartoon character images
This paper proposes a novel method to retrieve cartoon character images in a database or network. In this method, partial features of an image, defined as regions and aspects, are used as keys to identify cartoon character images. The similarities between a query cartoon character image and the images in the database are computed by using these features. Based on the similarities, the cartoon images same or similar to the query image are identified and retrieved from the database. Moreover, our method adopts a training scheme to reflect the user's subjectivity. The training emphasizes the significant regions or aspects by assigning more weight based on the user's preferences and actions, such as selecting a desired image or an area of an image. These processes make the retrieval more effective and accurate. Experimental results verify the effectiveness and retrieval accuracy of the method.
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