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Automatic adaptive parameterization in local phase feature-based bone segmentation in ultrasound.

机译:在超声中基于局部相位特征的骨骼分割中的自动自适应参数化。

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摘要

Intensity-invariant local phase features based on Log-Gabor filters have been recently shown to produce highly accurate localizations of bone surfaces from three-dimensional (3-D) ultrasound. A key challenge, however, remains in the proper selection of filter parameters, whose values have so far been chosen empirically and kept fixed for a given image. Since Log-Gabor filter responses widely change when varying the filter parameters, actual parameter selection can significantly affect the quality of extracted features. This article presents a novel method for contextual parameter selection that autonomously adapts to image content. Our technique automatically selects the scale, bandwidth and orientation parameters of Log-Gabor filters for optimizing local phase symmetry. The proposed approach incorporates principle curvature computed from the Hessian matrix and directional filter banks in a phase scale-space framework. Evaluations performed on carefully designed in vitro experiments demonstrate 35% improvement in accuracy of bone surface localization compared with empirically-set parameterization results. Results from a pilot in vivo study on human subjects, scanned in the operating room, show similar improvements.
机译:最近已证明基于Log-Gabor滤波器的强度不变局部相位特征可从三维(3-D)超声产生高度准确的骨骼表面定位。然而,关键的挑战仍然是正确选择滤波器参数,到目前为止,这些参数的值是凭经验选择的,并且对于给定的图像保持固定。由于在更改滤波器参数时,Log-Gabor滤波器的响应会发生很大变化,因此实际参数选择会显着影响提取特征的质量。本文提出了一种自动选择适应图像内容的上下文参数选择的新方法。我们的技术会自动选择Log-Gabor滤波器的比例,带宽和方向参数,以优化局部相位对称性。所提出的方法在相标度空间框架中结合了从Hessian矩阵和定向滤波器组计算出的主曲率。在精心设计的体外实验中进行的评估表明,与经验设置的参数化结果相比,骨表面定位的准确性提高了35%。在手术室中对人体进行的一项体内试验研究的结果显示出类似的改善。

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