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Active contour model guided image metamorphosis for inter-slice interpolation of medical images

机译:主动轮廓模型指导图像变形用于医学图像的切片间插值

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Abstract: This paper presents an interpolation method that uses the contours of organs as the control parameters to recover the intensity information in the physical gaps of serial cross-sectional medical images. In this method, active contour models are used for generating the control lines required for the field morphing algorithm, which were previously manually specified. Contour information derived from this segmentation pre-process is then further processed and used as control parameters to warp the corresponding regions in both input data slices into compatible shapes. In this way, the reliability of correspondence to locate different segments of the same organs is improved and the intensity information for the interpolated intermediate slices can be derived more faithfully, To reduce the high time complexity for calculating the image warp in the field morphing process, a hierarchical decomposition process is proposed. In comparison with the existing intensity interpolation algorithms, which only consider corresponding points in a small physical neighborhood, this method warps the data images into similar shapes according to contour information to provide more meaningful correspondence relationships. The results show that this method generates more realistic and less blurred interpolated images especially when the lcoal intensity variation is significant. !31
机译:摘要:本文提出了一种以器官轮廓为控制参数的插值方法,以恢复连续断层医学图像物理间隙中的强度信息。在这种方法中,主动轮廓模型用于生成场变形算法所需的控制线,这些控制线是先前手动指定的。然后,将从该分割预处理中获得的轮廓信息进行进一步处理,并将其用作控制参数,以将两个输入数据切片中的相应区域变形为兼容的形状。这样,提高了定位同一器官不同节段的对应关系的可靠性,并且可以更忠实地导出内插的中间切片的强度信息,为降低在场变形过程中计算图像变形的高时间复杂性,提出了一种层次分解过程。与仅考虑较小物理邻域中对应点的现有强度插值算法相比,该方法根据轮廓信息将数据图像扭曲为相似形状,以提供更有意义的对应关系。结果表明,该方法生成的图像更真实,模糊度更低,尤其是在煤粉强度变化明显的情况下。 !31

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