A Markov random fields model for describing unhomogeneous textures: generalized random stereograms

Milan Jovovic
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引用次数: 1

Abstract

We consider a stochastic interpretation of textures composed of textural elements that may not obey any particular ordering relation between them. Two-dimensional Markov random fields (MRF) model is proposed to describe the stochastic character of texture patterns. For a fixed lattice we show how unhomogeneous textures can be described. We discuss the evidence of phase transitions in generating such textures. Distance relation based on joint entropy is proposed to measure the statistical interdependence between random variables assigned to the nodes of the two-dimensional network. The form of this function is shown to be suitable as an objective measure of phase transitions when distinct texture regions evolve while cooling "temperature". The examples of unhomogeneous (figure-ground) type of textures which we call generalized random stereograms are used to illustrate the model. We discuss the relevance of the model for generating texture patterns for neurophysiological experiments, psychophysical experiments and pattern recognition.<>
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描述非均匀纹理的马尔可夫随机场模型:广义随机立体图
我们考虑由纹理元素组成的纹理的随机解释,这些纹理元素之间可能不服从任何特定的顺序关系。提出了二维马尔可夫随机场(MRF)模型来描述纹理图案的随机性。对于固定晶格,我们展示了如何描述非均匀纹理。我们讨论了产生这种织构的相变证据。提出了基于联合熵的距离关系来度量分配给二维网络节点的随机变量之间的统计依赖关系。当不同织构区域在冷却“温度”时发生变化时,该函数的形式被证明适合作为相变的客观测量。非均匀(图-底)纹理的例子,我们称之为广义随机立体图来说明该模型。我们讨论了该模型在神经生理实验、心理物理实验和模式识别中生成纹理模式的相关性。
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Extracting spatio-temporal patterns from geoscience datasets Magnetic contour tracing Exploring feature detection techniques for time-varying volumetric data Nonlinear models for representation, compression, and visualization of fluid flow images and velocimetry data A Markov random fields model for describing unhomogeneous textures: generalized random stereograms
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