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Multivariate locally stationary 2D wavelet processes with application to colour texture analysis

机译:多元局部平稳二维小波过程及其在色彩纹理分析中的应用

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摘要

In this article we propose a novel framework for the modelling of non-stationary multivariate lattice processes. Our approach extends the locally stationary wavelet paradigm into the multivariate two-dimensional setting. As such the framework we develop permits the estimation of a spatially localised spectrum within a channel of interest and, more importantly, a localised cross-covariance which describes the localised coherence between channels. Associated estimation theory is also established which demonstrates that this multivariate spatial framework is properly defined and has suitable convergence properties. We also demonstrate how this model-based approach can be successfully used to classify a range of colour textures provided by an industrial collaborator, yielding superior results when compared against current state-of-the-art statistical image processing methods.
机译:在本文中,我们提出了一种用于非平稳多元晶格过程建模的新颖框架。我们的方法将局部平稳小波范式扩展到多元二维设置中。这样,我们开发的框架允许估计感兴趣的信道内的空间局部频谱,更重要的是,可以描述信道之间的局部相干性的局部互协方差。还建立了相关估计理论,该理论证明该多元空间框架已正确定义并具有合适的收敛性。我们还演示了这种基于模型的方法如何成功地用于对工业协作者提供的一系列颜色纹理进行分类,与当前最新的统计图像处理方法相比,可以获得更好的结果。

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