分段H−1+H0+H1图像和分段图像分解的Mumford-Shah-Sobolevmodel

Jianhong Shen
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引用次数: 33

摘要

自然合成图像的模式分析对于图像处理、计算机视觉、人工智能和计算机图形学等许多重要领域至关重要。借鉴已有的重要研究成果,本文提出了一种新的无边界变分分割图像分解模型。作为一个逆问题求解器,新模型不仅输出由Mumford-Shah模型实现的单个对象的边界,而且还输出一个结构分解,包括光滑(或卡通化)成分,振荡成分(或纹理)和平方可积残数(或噪声)。强调了视觉研究的动机和理由,并给出了一些初步的数学分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Piecewise H−1+H0+H1 images and the Mumford-Shah-Sobolevmodel for segmented image decomposition
Pattern analysis of naturally synthesized images is crucial for a number of important fields includingimage processing, computer vision, artificial intelligence, andcomputer graphics. Benefited from several important works inexistence, the current research paper proposes a novelfree-boundary variational model for segmented imagedecomposition. As an inverse problem solver, the new modeloutputs not only the boundaries of individual objects as achievedby the Mumford-Shah model, but also a structure decompositioncomprising a smooth (or cartoonish) component, an oscillatorycomponent (or texture), and a square-integrable residue (ornoise). Motivations and justifications from vision research areemphasized, and some preliminary mathematical analysis is given.
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