语义网技术丰富的数字图像表示模型:视觉信息和非视觉信息

IF 0.2 Q4 ENGINEERING, MULTIDISCIPLINARY
S. Roa-Martínez, C. Coneglian, Silvana Vidotti
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引用次数: 0

摘要

数字图像的内容类型,视觉(句法和语义)和非视觉,导致了其表示的复杂性。单独考虑这些内容会阻碍数字图像检索,因为这会在图像的内容及其表示之间产生间隙。因此,本工作旨在提出一种数字图像视觉和非视觉信息的表示模型,并通过语义网技术进行语义丰富。为此,采用了一种具有书目法的定性方法。寻求对所讨论主题的理论补贴,由于它提出了一个模型并加以举例说明,因此它具有应用重点。所开发的模型描述了表示图像过程,并允许数据的语义丰富。这种丰富利用有利于通过推断使用数据的技术,促进了在多个上下文中的检索。此外,还介绍了数字医学图像的使用案例,证明了该方案的可行性。得出的结论是,视觉和非视觉内容的表示旨在改善在数字信息环境中检索图像的方式。应该考虑图像的内容和上下文的结合,尽管由于图像表示本身的分解,搜索机制通常会单独处理这一点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Digital Image Representation Model Enriched with Semantic Web Technologies: Visual and Non-Visual Information
The types of content of digital images, visual (syntactic and semantic) and non-visual, cause the complexity of their representation. Considering these contents separately hinders digital image retrieval because this creates a gap between the contents of the image and its representation. Therefore, this work aims to present a representation model of visual and non-visual information of digital images, with semantic enrichment through the Semantic Web technologies. For that, a qualitative methodology with a bibliographical approach was used. Theoretical subsidies of the topics addressed were sought, and it has an applied focus since it proposes a model and its exemplification. The developed model depicts the representation image process and allows the semantic enrichment of the data. This enrichment facilitates the retrieval in multiple contexts with technologies that favor the use of the data through inferences. Also, a use case with digital medical images is presented, demonstrating the feasibility of the proposal. It is concluded that the representation of visual and non-visual content aims to improve the way images are retrieved in digital information environments. The junction of the content and the context of images should be considered, even though search mechanisms usually treat this separately due to the disaggregation of image representation itself.
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