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    • 3. 发明申请
    • Method and Apparatus for Inner Wall Extraction and Stent Strut Detection Using Intravascular Optical Coherence Tomography Imaging
    • 使用血管内光学相干断层扫描成像的内壁提取和支架支架检测的方法和装置
    • US20070167710A1
    • 2007-07-19
    • US11555806
    • 2006-11-02
    • Gozde UnalYan YangGregory SlabaughTong Fang
    • Gozde UnalYan YangGregory SlabaughTong Fang
    • A61B5/05
    • A61B5/6852A61B5/0066A61B5/0086
    • A method and apparatus for automatically detecting stent struts in an image is disclosed whereby the inner boundary, or lumen, of an artery wall is first detected automatically and intensity profiles along rays in the image are determined. In one embodiment, detection of the lumen boundary may be accomplished, for example, by evolving a geometric shape, such as an ellipse, using a region-based algorithm technique, a geodesic boundary-based algorithm technique or a combination of the two techniques. Once the lumen boundary has been determined, in another embodiment, the stent struts are detected using a ray shooting algorithm whereby a ray is projected outward in the OCT image starting from the position in the image of the OCT sensor. The intensities of the pixels along the ray are used to detect the presence of a stent strut in the image.
    • 公开了一种用于自动检测图像中的支架支柱的方法和装置,其中首先自动检测动脉壁的内边界或内腔,并且确定与图像中的光线的强度分布。 在一个实施例中,可以例如通过使用基于区域的算法技术,基于测地边界的算法技术或两种技术的组合来演示诸如椭圆的几何形状来实现流明边界的检测。 一旦已经确定了管腔边界,在另一个实施例中,使用射线射击算法来检测支架支柱,由此射线从OCT传感器的图像中的位置开始向OCT中投射。 使用沿着光线的像素的强度来检测图像中支架支柱的存在。
    • 4. 发明申请
    • Method and Apparatus for Surface Partitioning Using Geodesic Distance Measure
    • 使用测地距离测量进行表面分割的方法和装置
    • US20070050073A1
    • 2007-03-01
    • US11466149
    • 2006-08-22
    • Gozde UnalGregory SlabaughTong Fang
    • Gozde UnalGregory SlabaughTong Fang
    • G06F19/00
    • H04R25/658G06K9/469H04R25/652H04R2225/77
    • An improved method of designing hearing aid molds is disclosed whereby regions of an ear impression model are identified as a function of a geodesic distance measure. According to a first embodiment, a canal point of an ear impression model is identified as that point having a maximum normalized geodesic distance as compared to all other points on the surface of the ear impression model. According to a second embodiment, a helix point of the ear impression model is identified as that point having a maximum normalized geodesic distance as compared to all points except those points in the canal region of said ear impression model. Finally, in accordance with another embodiment, a geodesic distance between a canal point and a helix point of an ear impression model is identified and a percentage threshold, illustratively 65%, is applied to that geodesic distance to identify a crus region.
    • 公开了一种改进的助听器模具的设计方法,其中耳朵印模模型的区域被识别为测地距离测量的函数。 根据第一实施例,与耳朵印象模型的表面上的所有其他点相比,耳朵印模模型的运河点被识别为具有最大归一化测地距离的点。 根据第二实施例,与除了所述耳朵印象模型的运河区域中的那些点之外的所有点相比,耳朵印模模型的螺旋点被识别为具有最大归一化测地距离的点。 最后,根据另一个实施例,识别耳朵印模模型的运河点和螺旋点之间的测地距离,并且示例性地将65%的百分比阈值应用于该测地距离以识别小腿区域。
    • 8. 发明申请
    • Method and Apparatus for the Classification of Surface Features of an Ear Impression
    • 耳朵印象表面特征分类的方法和装置
    • US20070127754A1
    • 2007-06-07
    • US11465628
    • 2006-08-18
    • Gregory SlabaughGozde UnalTong Fang
    • Gregory SlabaughGozde UnalTong Fang
    • H04R25/00
    • G06K9/6206H04R25/652H04R25/658H04R2225/77
    • A method and apparatus is disclosed whereby a point on an ear impression model to be labeled is selected and a shape context is determined for that point. This shape context is then compared to average shape contexts for different regions on a reference ear impression model, also referred to herein as an ear impression shape atlas. A cost function is used to determine the minimum cost between the shape context for the selected point and one of the average shape contexts. Once the minimized cost is determined, the region label corresponding to the average shape context having a minimized cost is assigned to that point. In this way, points on the surface of an ear impression are classified and labeled as being located in regions corresponding to the regions on the ear impression shape atlas.
    • 公开了一种方法和装置,由此选择要标记的耳朵印象模型上的点,并且为该点确定形状上下文。 然后将该形状上下文与参考耳印象模型上的不同区域的平均形状上下文进行比较,这里也称为耳朵印象形状图集。 成本函数用于确定所选点的形状上下文与平均形状上下文之间的最小成本。 一旦确定了最小化成本,则将具有最小化成本的平均形状上下文对应的区域标签分配给该点。 以这种方式,将耳朵表面的点分类并标记为位于与耳朵印象形状图集上的区域对应的区域中。
    • 10. 发明申请
    • System and Method For Variational Ball Skinning For Geometric Modeling of Ordered Balls
    • 用于变形球剥皮的有序球的几何建模的系统和方法
    • US20080109192A1
    • 2008-05-08
    • US11933516
    • 2007-11-01
    • Gregory SlabaughGozde UnalTong Fang
    • Gregory SlabaughGozde UnalTong Fang
    • G06F17/10
    • G06T17/10
    • A method for modeling a 2-dimensional tubular structure in a digitized image includes providing a digitized image of a tubular structure containing a plurality of 2D balls of differing radii, initializing a plurality of connected spline segments that form an envelope surrounding the plurality of 2D balls, each the spline segment Si being parameterized by positions of the ith and i+1th balls and contact angles αi, αi+1 from the center of each respective ball to a point on the perimeter of each the ball contacting the spline segment Si, each the αi affecting spline segment Si and Si−1, and updating the angles by minimizing an energy that is a functional of the angles, where the updating is repeated until the energy is minimized subject to a constraint that the envelope is tangent to each ball at each point of contact, where the envelope is represented by the contact angles.
    • 一种用于对数字化图像中的二维管状结构进行建模的方法包括提供包含不同半径的多个2D球的管状结构的数字化图像,初始化形成围绕多个2D球的包围的多个连接的花键片段 ,每个样条段S i i i被第i个和第i + 1个第球的位置参数化,并且接触角α1 从每个相应球的中心到接触花键片段S i的每个球的周边上的点的每个α,α,α, 影响样条线段S i和S i-1,并且通过使作为角度的函数的能量最小化来更新角度,其中 重复更新直到能量被最小化,受限于在每个接触点处包络与每个球相切,其中包络由接触角表示。