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首页> 外文期刊>International journal of bioinformatics research and applications >A texture analysis method for detection of clustered microcalcifications on digital mammograms.
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A texture analysis method for detection of clustered microcalcifications on digital mammograms.

机译:一种用于在数字乳房X线照片上检测簇状微钙化的纹理分析方法。

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摘要

Breast cancer is one of the major causes of death among women. Early detection of breast cancer is possible by the detection of clustered microcalcifications on X-ray mammograms. Texture is an important characteristic used in identifying objects or region of interest in a digitised mammogram. This work focuses on a statistical texture analysis method called Surrounding Region Dependence Method (Kim and Park, 1999) - based on second order histogram in two surrounding regions. Six textural features are extracted and are used to classify region of interests into positive ROIs, containing clustered microcalcifications and negative ROIs composed of normal breast tissues. A 3-layer backpropagation neural network is used as a classifier. Results are evaluated using Receiver Operating Characteristics analysis.
机译:乳腺癌是妇女死亡的主要原因之一。通过在X射线乳房X线照片上检测出聚集的微钙化,可以早期发现乳腺癌。纹理是在数字化乳房X线照片中识别物体或感兴趣区域的重要特征。这项工作着重于一种统计纹理分析方法,称为周围区域依赖方法(Kim and Park,1999)-基于两个周围区域的二阶直方图。提取六个纹理特征,并将其用于将感兴趣区域分类为正ROI,其中包含由正常乳腺组织组成的簇状微钙化和负ROI。三层反向传播神经网络用作分类器。使用接收器工作特性分析评估结果。

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