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Using automated texture features to determine the probability for masking of a tumor on mammography but not ultrasound

机译:使用自动纹理特征来确定在乳房X射线照相术(而非超声)上掩盖肿瘤的可能性

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摘要

BackgroundTumors in radiologically dense breast were overlooked on mammograms more often than tumors in low-density breasts. A fast reproducible and automated method of assessing percentage mammographic density (PMD) would be desirable to support decisions whether ultrasonography should be provided for women in addition to mammography in diagnostic mammography units. PMD assessment has still not been included in clinical routine work, as there are issues of interobserver variability and the procedure is quite time consuming. This study investigated whether fully automatically generated texture features of mammograms can replace time-consuming semi-automatic PMD assessment to predict a patient’s risk of having an invasive breast tumor that is visible on ultrasound but masked on mammography (mammography failure).
机译:背景乳腺X线照片上放射线密集乳腺的肿瘤比低密度乳腺肿瘤更容易被忽视。需要一种可快速重现且自动化的评估乳腺X射线摄影密度(PMD)的方法,以支持是否应在诊断性乳腺X射线摄影机中对女性进行超声检查。 PMD评估仍未纳入临床常规工作,因为存在观察者间差异的问题,而且该过程非常耗时。这项研究调查了自动生成的乳房X线照片的纹理特征是否可以代替费时的半自动PMD评估,以预测患者罹患浸润性乳腺肿瘤的风险,该风险在超声检查中可见,但在乳腺X线照相术中被掩盖(乳房X线照相术失败)。

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