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首页> 外文期刊>Biomedical Engineering, IEEE Transactions on >Three-Dimensional Spatiotemporal Features for Fast Content-Based Retrieval of Focal Liver Lesions
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Three-Dimensional Spatiotemporal Features for Fast Content-Based Retrieval of Focal Liver Lesions

机译:三维时空特征可快速检索基于内容的局灶性肝病灶

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摘要

Content-based image retrieval systems for -D medical datasets still largely rely on -D image-based features extracted from a few representative slices of the image stack. Most -D features that are currently used in the literature not only model a -D tumor incompletely but are also highly expensive in terms of computation time, especially for high-resolution datasets. Radiologist-specified semantic labels are sometimes used along with image-based -D features to improve the retrieval performance. Since radiological labels show large interuser variability, are often unstructured, and require user interaction, their use as lesion characterizing features is highly subjective, tedious, and slow. In this paper, we propose a -D image-based spatiotemporal feature extraction framework for fast content-based retrieval of focal liver lesions. All the features are computer generated and are extracted from four-phase abdominal CT images. Retrieval performance and query processing times for the proposed framework is evaluated on a database of hepatic lesions comprising of five pathological types. Bull’s eye percentage score above is achieved for three out of the five lesion pathologies and for of query lesions, at least one same type of lesion is ranked among the top two retrieved results. Experiments show that the proposed system’s query processing is more than
机译:用于-D医学数据集的基于内容的图像检索系统仍然很大程度上依赖于从图像堆栈的几个代表性切片中提取的基于-D图像的特征。当前在文献中使用的大多数-D特征不仅不能完全建模-D肿瘤,而且在计算时间方面也非常昂贵,尤其是对于高分辨率数据集。放射科医生指定的语义标签有时会与基于图像的-D功能一起使用,以提高检索性能。由于放射学标签显示出用户之间的较大差异,通常是无结构的,并且需要用户交互,因此将它们用作病灶表征特征是高度主观,乏味且缓慢的。在本文中,我们提出了基于-D图像的时空特征提取框架,用于基于内容的快速肝脏局灶性病变的检索。所有特征均由计算机生成,并从四相腹部CT图像中提取。在包含五种病理类型的肝病变数据库中评估了所提出框架的检索性能和查询处理时间。在五个病变病理中的三个病变病变中,以及在查询病变中,牛眼百分比得分均达到以上,在检索到的前两个结果中,至少有一种相同类型的病变排名。实验表明,该系统的查询处理能力远胜于

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