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Preprocessing for improved computer aided detection in medical ultrasound

机译:预处理,用于改进医学超声中的计算机辅助检测

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Recently, a new speckle noise reduction and contrast enhancement technique has been introduced that is motivated by the research in compressive sampling or sensing. Compressive sampling is based on the principle that a sparse signal such as ultrasound can be fully recovered when sampled below the Nyquist rate. This allows for a new noise reduction technique that preserves the high frequency and fine details while reducing the effects of speckle noise. This method improves the overall perceptual quality of the image for visualization and diagnosis by the radiologist. This paper examines how the improvement in SNR makes the method suitable as a preprocessor to improve a computer aided detection (CAD) system for breast cancer detection. Classical performance metrics such as false positive rates, false negative rates and receiver operator curves will be used to show the benefits of this approach. Initial experiments look promising for microcalcification detection, where the new method yields a false negative rate of 20 percent at a false positive rate of 0.5 percent while the traditional speckle reduction techniques yield a false negative rate of 60 percent at a false positive rate of 0.5 percent.
机译:最近,已经引入了一种新的散斑降噪和对比增强技术,这是通过对压缩采样或感测的研究激励的。压缩采样基于原理的原理,即在比奈奎斯特率下方的采样时可以完全恢复稀疏信号。这允许新的降噪技术保留高频和精细细节,同时降低斑点噪声的影响。该方法提高了放射科学家可视化和诊断的图像的整体感知质量。本文研究了SNR的改进如何使该方法适合作为预处理器来改善用于乳腺癌检测的计算机辅助检测(CAD)系统。诸如假阳性率,假负速率和接收器操作员曲线之类的经典性能指标将用于显示这种方法的好处。初步实验看起来很有希望进行微钙化检测,其中新方法以0.5%的假阳性率产生20%的假负率,而传统的散斑减少技术产生60%的假阴性率,以0.5%的假阳性率为0.5% 。

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