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Ontology of gaps in content-based image retrieval.

机译:基于内容的图像检索中的空白本体。

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摘要

Content-based image retrieval (CBIR) is a promising technology to enrich the core functionality of picture archiving and communication systems (PACS). CBIR has a potential for making a strong impact in diagnostics, research, and education. Research as reported in the scientific literature, however, has not made significant inroads as medical CBIR applications incorporated into routine clinical medicine or medical research. The cause is often attributed (without supporting analysis) to the inability of these applications in overcoming the semantic gap. interpretation available with human cognitive capabilities from the low-level pixel analysis of computers, based on mathematical processing and artificial intelligence methods. In this paper, we suggest a more systematic and comprehensive view of the concept of "gaps" in medical CBIR research. In particular, we define an ontology of 14 gaps that addresses the image content and features, as well as system performance and usability. In addition to these gaps, we identify seven system characteristics that impact CBIR applicability and performance. The framework we have created can be used a posteriori to compare medical CBIR systems and approaches for specific biomedical image domains and goals and a priori during the design phase of a medical CBIR application, as the systematic analysis of gaps provides detailed insight in system comparison and helps to direct future research.
机译:基于内容的图像检索(CBIR)是一种有前途的技术,可以丰富图片存档和通信系统(PACS)的核心功能。 CBIR具有在诊断,研究和教育方面产生巨大影响的潜力。然而,科学文献中报道的研究并未取得重大进展,因为医学CBIR应用已纳入常规临床医学或医学研究中。原因通常是(没有支持分析)归因于这些应用程序无法克服语义鸿沟。基于数学处理和人工智能方法的计算机低级像素分析可提供具有人类认知能力的解释。在本文中,我们建议对医学CBIR研究中的“缺口”概念进行更系统,更全面的了解。特别是,我们定义了14个空白的本体,以解决图像内容和功能以及系统性能和可用性。除这些差距外,我们还确定了影响CBIR适用性和性能的七个系统特征。我们创建的框架可以用于事后比较医学CBIR系统和特定生物医学图像领域和目标的方法,以及在医学CBIR应用程序设计阶段的先验,因为对差距的系统分析提供了系统比较和分析的详细见解。帮助指导未来的研究。

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