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Evaluation of Shape Indexing Methods for Content-Based Retrieval of X-Ray Images

机译:基于内容的X射线图像检索的形状索引方法评估

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Efficient content-based image retrieval of biomedical images is a challenging problem of growing research interest. Feature representation algorithms used in indexing medical images on the pathology of interest have to address conflicting goals of reducing feature dimensionality while retaining important and often subtle biomedical features. At the Lister Hill National Center for Biomedical Communications, a R&D division of the National Library of Medicine, we are developing a content-based image retrieval system for digitized images of a collection of 17,000 cervical and lumbar x-rays taken as a part of the second National Health and Nutrition Examination Survey (NHANES II). Shape is the only feature that effectively describes various pathologies identified by medical experts as being consistently and reliably found in the image collection. in order to determine if the state of the art in shape representation methods is suitable for this application, we have evaluated representative algorithms selected from the literature. The algorithms were tested on a subset of 250 vertebral shapes. In this paper we present the requirements of an ideal algorithms, define the evaluation criteria, and present the results and our analysis of the evaluation. We observe that while the shape methods perform well on visual inspection of the overall shape boundaries, they fall short in meeting the needs of determining similarity between the vertebral shapes based on the pathology.
机译:基于高效的基于内容的图像检索生物医学图像是一种持续的研究兴趣的具有挑战性问题。用于索引医学图像的特征表示算法在感兴趣的病理学上,必须解决减少特征维度的冲突目标,同时保留重要且经常细微的生物医学特征。在Lister Hill国家生物医学通信中心,是国家医学图书馆的研发部门,我们正在开发基于内容的图像检索系统,用于一系列17,000个宫颈和腰部X射线的数字化图像第二届全国卫生和营养考试调查(Nhanes II)。形状是唯一有效地描述了医学专家识别的各种病例,如在图像集合中始终如一地发现的各种病程。为了确定形状表示方法的最终状态是否适用于本申请,我们已经评估了选自文献的代表性算法。在250个椎体形状的子集上测试算法。本文介绍了理想算法的要求,定义了评估标准,并展示了对评估的结果和分析。我们观察到,虽然形状方法对整体形状边界的目视检查表现良好,但它们在满足基于病理学的基础上确定椎体形状之间的相似性的需要缩短。

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