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首页> 外文期刊>International journal of software innovation >Recovering Polyp Shape from an Endoscope Image Using Two Light Sources
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Recovering Polyp Shape from an Endoscope Image Using Two Light Sources

机译:使用两个光源从内窥镜图像中恢复息肉形状

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摘要

This paper proposes a new approach to recover the polyp shape from an endoscope image using a photometric constraint equation considering two light sources. The procedures are as follows. First, obtain the initial depth distributions by optimizing photometric equation obtained from two light sources. Next, obtain the surface normal vector from depth using numerical difference at each point. Then the mapping between the obtained normal vector and true normal vector is learned using Radial Basis Function Neural Network for a Lambertian sphere, and learning is generalized to another actual polyp image. Finally, optimize the depth using the obtained surface normal to recover the final 3D shape. The validity is confirmed of this method in comparison with the previous methods via computer simulation and experiments using actual endoscope images.
机译:本文提出了一种新的方法,该方法使用考虑了两个光源的光度约束方程从内窥镜图像中恢复息肉形状。步骤如下。首先,通过优化从两个光源获得的光度方程来获得初始深度分布。接下来,使用每个点的数值差从深度获得表面法线向量。然后使用径向基函数神经网络对朗伯球学习获得的法向矢量和真实法向矢量之间的映射,并将学习推广到另一个实际息肉图像。最后,使用获得的表面法线优化深度以恢复最终的3D形状。通过计算机模拟和使用实际内窥镜图像的实验,与以前的方法相比,该方法的有效性得到了确认。

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