首页> 外文会议>Image Processing pt.1; Progress in Biomedical Optics and Imaging; vol.7 no.30 >Analysis of Parenchymal Patterns using Conspicuous Spatial Frequency Features in Mammograms applied to the BI-RADS Density Rating Scheme
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Analysis of Parenchymal Patterns using Conspicuous Spatial Frequency Features in Mammograms applied to the BI-RADS Density Rating Scheme

机译:BI-RADS密度评估方案中使用乳腺X射线显着空间频率特征分析实质模式

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Automatic classification of the density of breast parenchyma is shown using a measure that is correlated to the human observer performance, and compared against the BI-RADS density rating. Increasingly popular in the United States, the Breast Imaging Reporting and Data System (BI-RADS) is used to draw attention to the increased screening difficulty associated with greater breast density; however, the BI-RADS rating scheme is subjective and is not intended as an objective measure of breast density. So, while popular, BI-RADS does not define density classes using a standardized measure, which leads to increased variability among observers. The adaptive thresholding technique is a more quantitative approach for assessing the percentage breast density, but considerable reader interaction is required. We calculate an objective density rating that is derived using a measure of local feature salience. Previously, this measure was shown to correlate well with radiologists' localization and discrimination of true positive and true negative regions-of-interest. Using conspicuous spatial frequency features, an objective density rating is obtained and correlated with adaptive thresholding, and the subjectively ascertained BI-RADS density ratings. Using 100 cases, obtained from the University of South Florida's DDSM database, we show that an automated breast density measure can be derived that is correlated with the interactive thresholding method for continuous percentage breast density, but not with the BI-RADS density rating categories for the selected cases. Comparison between interactive thresholding and the new salience percentage density resulted in a Pearson correlation of 76.7%. Using a four-category scale equivalent to the BI-RADS density categories, a Spearman correlation coefficient of 79.8% was found.
机译:使用与人类观察者的表现相关的量度,并与BI-RADS密度等级进行比较,显示了乳房实质的密度的自动分类。乳房成像报告和数据系统(BI-RADS)在美国越来越受欢迎,用于引起人们注意与更大乳房密度相关的筛查难度的增加。但是,BI-RADS评分方案是主观的,并非旨在客观地衡量乳房密度。因此,虽然流行,但BI-RADS并未使用标准化的度量来定义密度等级,这导致观察者之间的变异性增加。自适应阈值技术是一种用于评估乳房密度百分比的更定量的方法,但是需要大量的读者交互作用。我们计算使用局部特征显着性得出的客观密度等级。以前,该措施已显示出与放射科医生的定位以及对真正的阳性和阴性部位感兴趣的辨别能力密切相关。使用明显的空间频率特征,可以获得客观的密度等级并将其与自适应阈值相关联,并主观确定BI-RADS密度等级。使用从南佛罗里达大学的DDSM数据库获得的100个案例,我们表明可以得出自动的乳腺密度测量值,该测量值与用于连续百分比乳腺密度的交互式阈值方法相关,但与BI-RADS密度等级类别无关选定的案例。交互式阈值与新显着性百分比密度之间的比较导致Pearson相关性为76.7%。使用相当于BI-RADS密度类别的四类量表,发现Spearman相关系数为79.8%。

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