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首页> 外文期刊>International Journal of Multimedia Information Retrieval >Multi-dimensionalmulti-directionalmaskmaximum edge pattern for bio-medical image retrieval
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Multi-dimensionalmulti-directionalmaskmaximum edge pattern for bio-medical image retrieval

机译:生物医学图像检索的多维多维方向槌MaskMaximum边缘模式

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摘要

Authors have proposed novel multi-dimensional multi-directional mask maximum edge patterns for the bio-medical image retrieval. Standard local binary patterns encode relationship of neighbor pixels with center pixel. Local mesh patterns encode the relationship between adjacent pixels surrounding the center pixel. Proposed approach encodes relationship of neighbour pixels in adjacent planes of a multi-dimensional image, in three stages. In the first stage, five sub images are formed by traversing in five different directions on three planes of a multi-dimensional image. In the second stage, directional masks are applied on each sub image to find directional edges. In stage three, maximum edge patterns are found based on the directions of the directional edges. To examine performance analysis of the proposed algorithm, we tested proposed algorithm on three benchmark databases, which gives retrieval accuracy 56.93% for top 5 images, 93.36 and 62.49% for top 10 images on MESSIDOR (Retinal images), VIA/I-ELCAP (CT images) and OASIS-MRI databases respectively in terms of average retrieval precision. The comparison reflects, there is considerable improvement in the performance.
机译:作者提出了用于生物医学图像检索的新型多维多向掩模最大边缘图案。标准本地二进制模式与中心像素的邻居像素的关系编码。本地网格图案对中心像素周围的相邻像素之间的关系进行编码。在三个阶段中,所提出的方法对多维图像相邻平面中的相邻平面中的相邻像素的关系。在第一阶段,通过在多维图像的三个平面上穿过五个不同的方向来形成五个子图像。在第二阶段,在每个子图像上应用方向掩模以找到方向边缘。在第三阶段,基于方向边缘的方向找到最大边缘图案。为了检查所提出的算法的性能分析,我们在三个基准数据库上测试了提出的算法,这对于前5张图片,93.36和62.49%,对于Messidor(视网膜图像),VIA / I Elcap( CT图像)和OASIS-MRI数据库分别在平均检索精度方面。比较反映了,性能相当好。

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