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Evaluation of a Content-Based Retrieval System for Blood Cell Images with Automated Methods

机译:自动化方法评估基于内容的血细胞图像检索系统

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摘要

Content-based image retrieval techniques have been extensively studied for the past few years. With the growth of digital medical image databases, the demand for content-based analysis and retrieval tools has been increasing remarkably. Blood cell image is a key diagnostic tool for hematologists. An automated system that can retrieved relevant blood cell images correctly and efficiently would save the effort and time of hematologists. The purpose of this work is to develop such a content-based image retrieval system. Global color histogram and wavelet-based methods are used in the prototype. The system allows users to search by providing a query image and select one of four implemented methods. The obtained results demonstrate the proposed extended query refinement has the potential to capture a user’s high level query and perception subjectivity by dynamically giving better query combinations. Color-based methods performed better than wavelet-based methods with regard to precision, recall rate and retrieval time. Shape and density of blood cells are suggested as measurements for future improvement. The system developed is useful for undergraduate education.
机译:在过去的几年中,基于内容的图像检索技术已经得到了广泛的研究。随着数字医学图像数据库的增长,对基于内容的分析和检索工具的需求已显着增加。血细胞图像是血液学家的关键诊断工具。可以正确,有效地检索相关血细胞图像的自动化系统将节省血液科医生的工作量和时间。这项工作的目的是开发这种基于内容的图像检索系统。原型中使用了全局颜色直方图和基于小波的方法。该系统允许用户通过提供查询图像进行搜索,并选择四种实现的方法之一。获得的结果表明,所提出的扩展查询细化可以通过动态提供更好的查询组合来捕获用户的高级查询和感知主观性。基于颜色的方法在精度,召回率和检索时间方面比基于小波的方法更好。建议将血细胞的形状和密度作为将来改善的指标。开发的系统对于本科教育很有用。

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