首页> 外文会议>International symposium on advances in visual computing;ISVC 2009 >Automatic Data-Driven Parameterization for Phase-Based Bone Localization in US Using Log-Gabor Filters
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Automatic Data-Driven Parameterization for Phase-Based Bone Localization in US Using Log-Gabor Filters

机译:使用Log-Gabor滤波器的美国基于相位的骨定位的自动数据驱动参数化

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Intensity-invariant local phase-based feature extraction techniques have been previously proposed for both soft tissue and bone surface localization in ultrasound. A key challenge with such techniques is optimizing the selection of appropriate filter parameters whose values are typically chosen empirically and kept fixed for a given image. In this paper we present a novel method for contextual parameter selection that is adaptive to image content. Our technique automatically selects the scale, bandwidth and orientation parameters of Log-Gabor filters for optimizing the local phase symmetry in ultrasound images. The proposed approach incorporates principle curvature computed from the Hessian matrix and directional filter banks in a phase scale-space framework. Evaluations performed on in vivo and in vitro data demonstrate the improvement in accuracy of bone surface localization compared to empirically set parameterization results.
机译:先前已经提出了基于强度不变的局部相位的特征提取技术,用于超声中的软组织和骨表面定位。这种技术的主要挑战是优化适当滤波器参数的选择,这些滤波器参数的值通常是凭经验选择的,并且对于给定的图像保持固定。在本文中,我们提出了一种新的上下文参数选择方法,该方法适用于图像内容。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,以优化超声图像中的局部相位对称性。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。对体内和体外数据进行的评估表明,与凭经验设置的参数化结果相比,骨表面定位的准确性有所提高。

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