首页> 外文会议>Conference on Computational Imaging II; 20040119-20040120; San Jose,CA; US >Image Model: New Perspective for Image Processing and Computer Vision
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Image Model: New Perspective for Image Processing and Computer Vision

机译:图像模型:图像处理和计算机视觉的新视角

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摘要

We propose a new image model in which the image support and image quantities are modelled using algebraic topology concepts. The image support is viewed as a collection of chains encoding combination of pixels grouped by dimension and linking different dimensions with the boundary operators. Image quantities are encoded using the notion of cochain which associates values for pixels of given dimension that can be scalar, vector, or tensor depending on the problem that is considered. This allows obtaining algebraic equations directly from the physical laws. The coboundary and codual operators, which are generic operations on cochains allow to formulate the classical differential operators as applied for field functions and differential forms in both global and local forms. This image model makes the association between the image support and the image quantities explicit which results in several advantages: it allows the derivation of efficient algorithms that operate in any dimension and the unification of mathematics and physics to solve classical problems in image processing and computer vision. We show the effectiveness of this model by considering the isotropic diffusion.
机译:我们提出了一种新的图像模型,其中使用代数拓扑概念对图像支持和图像数量进行了建模。图像支持被视为链的集合,这些链对按维度分组的像素进行编码,并将不同维度与边界运算符链接在一起。图像量使用共链概念进行编码,共链概念根据所考虑的问题将给定尺寸像素的值关联为标量,矢量或张量。这允许直接从物理定律获得代数方程。共边界运算符和共性运算符是共链上的通用运算符,可用于表述适用于现场函数和全局和局部形式的差分形式的经典差分运算符。该图像模型使图像支持和图像量之间的关联变得明确,从而带来了许多优势:它允许派生可在任何维度上运行的高效算法,并且数学和物理的统一解决了图像处理和计算机视觉中的经典问题。通过考虑各向同性扩散,我们证明了该模型的有效性。

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