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Multiresolution image processing techniques with applications in texture segmentation and nonlinear filtering.

机译:多分辨率图像处理技术及其在纹理分割和非线性滤波中的应用。

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摘要

We present a new algorithm for segmentation of textured images using a multiresolution Bayesian approach. The algorithm uses a multiresolution Gaussian autoregressive (MGAR) model for the pyramid representation of the observed image, and assumes a multiscale Markov random field model for the class label pyramid. Unlike other approaches, which have either used a single-resolution representation of the observed image or implicitly assumed independence between different levels of a multiresolution representation of the observed image, the models used in this thesis incorporate correlations between different levels of both the observed image pyramid and the class label pyramid. The criterion used for segmentation is the minimization of the expected value of the number of misclassified nodes in the multiresolution lattice. The estimate which satisfies this criterion is referred to as the "multiresolution maximization of the posterior marginals" (MMPM) estimate, and is a natural extension of the single-resolution maximization of the posterior marginals (MPM) estimate. The parameters of the MGAR model--the means, prediction coefficients, and prediction error variances of the different textures--are unknown. The expectation-maximization (EM) algorithm is used to estimate these parameters while simultaneously performing the segmentation. Analysis and experimental results demonstrating the performance of the algorithm are presented.; We also propose new approaches for the extension of binary and grayscale morphological operations to color imagery. We investigate two approaches for "color morphology"--a vector approach and a component-wise approach. New vector morphological filtering operations are defined, and a set-theoretic analysis of these vector operations is presented. We also present experimental results comparing the performance of the vector approach and the component-wise approach for multiscale color image analysis and for noise suppression in color images.; Finally, we describe a video coding technique which generates an embedded bit stream that provides complete data rate scalability. This video coding scheme is based on the Embedded Zerotree Wavelet (EZW) algorithm for still image compression. We present experimental results demonstrating the performance of the algorithm at various data rates.
机译:我们提出了一种使用多分辨率贝叶斯方法分割纹理图像的新算法。该算法对观察图像的金字塔表示使用多分辨率高斯自回归(MGAR)模型,并为类标签金字塔采用多尺度马尔可夫随机场模型。与其他方法不同,这些方法要么使用观察图像的单分辨率表示,要么隐式假定观察图像的多分辨率表示的不同级别之间具有独立性,因此本文中使用的模型将两个观察图像金字塔的不同级别之间的相关性纳入其中。和阶级标签金字塔。用于分割的标准是最小化多分辨率晶格中错误分类的节点数的期望值。满足该标准的估计被称为“后边缘的多分辨率最大化”(MMPM)估计,并且是后边缘(MPM)估计的单分辨率最大的自然扩展。 MGAR模型的参数-不同纹理的均值,预测系数和预测误差方差-是未知的。期望最大化(EM)算法用于估计这些参数,同时执行分段。分析和实验结果证明了该算法的性能。我们还提出了将二进制和灰度形态学运算扩展到彩色图像的新方法。我们研究“颜色形态”的两种方法-矢量方法和逐分量方法。定义了新的矢量形态过滤操作,并提出了对这些矢量操作的集合理论分析。我们还提供了比较矢量方法和逐分量方法在多尺度彩色图像分析和彩色图像中抑制噪声的性能的实验结果。最后,我们描述了一种视频编码技术,该技术可生成提供完整数据速率可伸缩性的嵌入式比特流。此视频编码方案基于用于静态图像压缩的嵌入式零树小波(EZW)算法。我们提供的实验结果证明了该算法在各种数据速率下的性能。

著录项

  • 作者

    Comer, Mary L.;

  • 作者单位

    Purdue University.;

  • 授予单位 Purdue University.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 1995
  • 页码 144 p.
  • 总页数 144
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;
  • 关键词

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