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A graph-based approach to the retrieval of dual-modality biomedical images using spatial relationships

机译:基于图的空间关系检索双模态生物医学图像的方法

摘要

The increasing size of medical image archives and the complexity of medical images have led to the development of medical content-based image retrieval (CBIR) systems. These systems use the visual content of images for image retrieval in addition to conventional textual annotation, and have become a useful technique in biomedical data management. Existing CBIR systems are typically designed for use with single-modality images, and are restricted when multi-modal images, such as co-aligned functional positron emission tomography and anatomical computed tomography (PET/CT) images, are considered. Furthermore, the inherent spatial relationships among adjacent structures in biomedical images are not fully exploited. In this study, we present an innovative retrieval system for dual-modality PET/CT images by proposing the use of graph-based methods to spatially represent the structural relationships within these images. We exploit the co-aligned functional and anatomical information in PET/CT, using attributed relational graphs (ARG) to represent both modalities spatially and applying graph matching for similarity measurements. Quantitative evaluation demonstrated that our dual-modal ARG enabled the CBIR of dual-modality PET/CT. The potential of our dual-modal ARG in clinical application was also explored.
机译:医学图像档案库的不断增加和医学图像的复杂性导致了基于医学内容的图像检索(CBIR)系统的发展。这些系统除了使用常规的文本注释外,还使用图像的可视内容进行图像检索,并已成为生物医学数据管理中的一种有用技术。现有的CBIR系统通常设计为与单模态图像一起使用,并且在考虑多模态图像(例如,共对准功能正电子发射断层扫描和解剖计算机断层扫描(PET / CT)图像)时受到限制。此外,生物医学图像中相邻结构之间的固有空间关系尚未得到充分利用。在这项研究中,我们通过提出使用基于图的方法来空间表示这些图像中的结构关系,提出了一种用于双模态PET / CT图像的创新检索系统。我们利用PET / CT中的共同对齐功能和解剖学信息,使用属性关系图(ARG)来表示空间上的两种形态并将图匹配应用于相似性测量。定量评估表明,我们的双峰ARG能够实现双峰PET / CT的CBIR。还探讨了我们的双峰ARG在临床应用中的潜力。

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