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Texture feature extraction using gray level statistical matrix for content-based mammogram retrieval

机译:基于灰度统计矩阵的基于内容的乳腺X射线照片检索纹理特征

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摘要

Texture is one of the visual contents of an image used in content-based image retrieval (CBIR) to represent and index the image. Statistical textural representation methods characterize texture by the statistical distribution of the image intensity. This paper proposes a gray level statistical matrix from which four statistical texture features are estimated for the retrieval of mammograms from mammographic image analysis society (MIAS) database. The mammograms comprising architectural distortion, asymmetry, calcification, circumscribed, ill-defined, spiculated and normal classes are used in the experimentation. Precision, recall, retrieval rate, normalized average rank, average matching fraction, storage requirement and retrieval time are the performance measures used for the evaluation of retrieval performance. Using the proposed method, the highest mean precision rate obtained is 85.1 %. The results show that the proposed method outperforms the state-of-the-art texture feature extraction methods in mammogram retrieval problem.
机译:纹理是在基于内容的图像检索(CBIR)中用于表示和索引图像的图像的视觉内容之一。统计纹理表示方法通过图像强度的统计分布来表征纹理。本文提出了一个灰度统计矩阵,从中估计出四个统计纹理特征,以从乳腺X射线摄影图像分析学会(MIAS)数据库中检索乳X射线照片。在实验中使用了包括建筑物变形,不对称性,钙化,界限分明,不明确,尖峰和正常类别的乳房X线照片。精度,召回率,检索率,归一化平均等级,平均匹配分数,存储需求和检索时间是用于评估检索性能的性能指标。使用所提出的方法,获得的最高平均准确率为85.1%。结果表明,所提出的方法在乳房X线照片检索问题上优于最新的纹理特征提取方法。

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