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Biomedical image indexing and retrieval based on new efficient hybrid approach using directional decomposition and a novel local directional frequency encoded pattern: a post feature descriptor

机译:基于新型高效混合方法的生物医学图像索引和检索,该方法使用定向分解和新颖的局部定向频率编码模式:后特征描述符

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摘要

In this paper, a new efficient hybrid approach based on directional decomposition and post local feature extraction is proposed for biomedical image indexing and retrieval. Initially, triplet half-band filter bank (THFB) is modified and used in directional filter bank (DFB) for directional decomposition of images. DFB decomposes image into directional frequency sub-bands. To acquire local information in each directional sub-band of images, a novel local directional frequency encoded pattern (LDFEP) feature descriptor is proposed as post feature descriptor. The LDFEP is based on establishing the relationship between 0(0), 45(0), 90(0), and 135(0) directional frequency components. The deliberation of directional as well as local information composes hybrid approach which is more efficient than the existing descriptors for biomedical image retrieval. Manhattan distance is selected to compute analogy between the query feature vector and the feature vector of images from the database. The efficacy of the proposed approach in terms of precision and recall has been evaluated by conducting the experiments on three well-known biomedical databases: Open access series of imaging studies (OASIS)-MRI, EXACT 09-CT and NEMA-CT. The experimental results confirmed the superiority of the proposed approach in comparison with the state-of-the-art feature descriptors for biomedical image retrieval.
机译:本文提出了一种新的基于方向分解和后期局部特征提取的高效混合方法,用于生物医学图像的索引和检索。最初,对三重半带滤波器带(THFB)进行了修改,并在定向滤波器带(DFB)中用于图像的定向分解。 DFB将图像分解为定向频率子带。为了获取图像的每个方向子带中的局部信息,提出了一种新颖的局部方向频率编码图案(LDFEP)特征描述符作为后特征描述符。 LDFEP基于建立0(0),45(0),90(0)和135(0)定向频率分量之间的关系。方向性信息和本地信息的审议构成了混合方法,该方法比现有的生物医学图像检索描述符更有效。选择曼哈顿距离以计算查询特征向量和数据库中图像的特征向量之间的类比。通过在三个著名的生物医学数据库上进行实验,评估了所提方法在准确性和召回率方面的功效:开放性影像学研究系列(OASIS)-MRI,EXACT 09-CT和NEMA-CT。实验结果证实了与生物医学图像检索的最新特征描述符相比,该方法的优越性。

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