Texture Synthesis by Non-Parametric Sampling

ICCV(1999)

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摘要
A non-parametric method for texture synthesis is proposed. The texture synthesis process grows a new image outward from an initial seed, one pixel at a time. A Markov random field model is assumed, and the conditional distribution of a pixel given all its neighbors synthesized so far is estimated by querying the sample image and finding all similar neighborhoods. The degree of randomness is controlled by a single perceptually intuitive parameter. The method aims at preserving as much local structure as possible and produces good results for a wide variety of synthetic and real-world textures.
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关键词
initial seed,markov random field model,conditional distribution,sample image,non-parametric method,texture synthesis process,real-world texture,non-parametric sampling,texture synthesis,new image outward,good result,application software,image texture,computer science,pixel,markov processes,computer vision,sampling methods,randomness,histograms
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