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Automated Detection of Grayscale Bar and Distance Scale in Ultrasound Images

机译:超声图像中自动检测灰度栏和距离秤

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Computer assisted diagnosis algorithms are evaluated by testing them against wide-ranging sets of images arising from real clinical conditions. Detection of the distance scale and the reference grayscale present in most ultrasound images can be used to automate the calibration of physical per-pixel distances and grayscale normalization over heterogeneously acquired ultrasound datasets. This work presents novel methods for automated detection of (ⅰ) the distance scale and the spacing between its gradations, (ⅱ) the reference grayscale. The distance scale was detected by searching for regular peaks in the 1-D autocorrelation of image pixel columns. The grayscale bar was detected by searching for contiguous sets of columns with long sequences of monotonically changing intensity. In tests on over 1000 images the distance scale detection rate was 94.8% and the correct gradation spacing was determined 91.2% of the time. The reference grayscale detection rate was 100%. A confidence measure was also introduced to characterize the certainty of the distance scale detection. An optimal confidence threshold for flagging low-confidence results that minimizes human intervention without risk of incorrect results remaining unflagged was established through ROC curve analysis.
机译:通过对来自真实临床条件产生的宽范围的图像进行测试来评估计算机辅助诊断算法。在大多数超声图像中的距离和参考灰度尺度的检测可用于自动校准异质地获取的超声数据集的物理每个像素距离和灰度归一成。该工作提出了新的自动检测方法(Ⅰ)距离标度和其灰度之间的间距,(Ⅱ)参考灰度。通过在图像像素列的1-D自相关中搜索常规峰值来检测距离尺度。通过搜索具有长序列的单调变化强度的长序列的连续列,检测到灰度栏。在超过1000个图像上的测试中,距离测量率为94.8%,并且正确的灰度间距测定了91.2%的时间。参考灰度检测率为100%。还引入了置信度量来表征距离尺度检测的确定性。通过ROC曲线分析建立了阻止人为干预的低置信度结果,这使得人类干预最小化的低置信度阈值,这是通过ROC曲线分析建立了剩余的不正确的结果。

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