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Use of Weighted Visual Terms and Machine Learning Techniques for Image Content Recognition relying on MPEG-7 Visual Descriptors

机译:加权视觉术语和机器学习技术在依赖MPEG-7视觉描述符的图像内容识别中的应用

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We propose a technique for automatic recognition of content in images. Our technique uses machine learning methods to build classifiers which are able to decide about the presence of semantic concepts in images. Our classifiers exploit a representation of images in terms of vectors of visual terms. A visual term represents a set of visually similar regions that can be found in images. Various types of visual terms are used at the same time to take into account various similarity criteria and region representations that are available to compare regions. Specifically, we compare regions using the 5 MPEG-7 visual descriptors. An image is indexed by first using a segmentation algorithm to extract its regions, and then the image is associated with the visual terms that are more similar to the extracted regions. The proposed technique offers very good performance as demonstrated by the experiments that we performed.
机译:我们提出了一种自动识别图像内容的技术。我们的技术使用机器学习方法来构建分类器,这些分类器可以决定图像中语义概念的存在。我们的分类器利用视觉术语向量来表示图像。视觉术语代表可以在图像中找到的一组视觉相似区域。同时使用各种类型的视觉术语,以考虑到各种相似性标准和可用于比较区域的区域表示形式。具体来说,我们使用5个MPEG-7视觉描述符比较区域。首先通过使用分割算法对图像进行索引以提取其区域,然后将图像与更类似于所提取区域的视觉术语相关联。正如我们进行的实验所证明的,所提出的技术提供了非常好的性能。

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