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Statistical models of appearance for functional analysis of cardiac MRI.

机译:心脏MRI功能分析的外观统计模型。

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We present a framework for the analysis of cardiac MRI using Statistical Models of Appearance. This thesis makes three major contributions. The first contribution involves the introduction of a new algorithm for fitting 3-D Active Appearance Models on cardiac MRI, using the inverse compositional image alignment algorithm. We observe a 60-fold increase in fitting speed and an accuracy that is on par with Gauss-Newton optimization. The second contribution involves an investigation of the use of wavelets in hierarchical Active Shape Models, as a potential way of making them more expressively powerful. The third contribution involves an investigation of the use of adaptive filtering for high quality resampling of 4-D cardiac MR images. We show the high quality results that are derived by the use of adaptive filtering, and describe the ways in which it could improve the automated analysis of medical images.
机译:我们提出了使用外观统计模型对心脏MRI进行分析的框架。本论文做出了三个主要贡献。第一项贡献是使用逆成分图像对齐算法,引入了一种新的算法,用于在心脏MRI上拟合3-D活动外观模型。我们发现拟合速度提高了60倍,其准确性与高斯-牛顿优化方法相当。第二个贡献涉及调查小波在分层Active Shape模型中的使用,这是使小波更具表现力的一种潜在方式。第三项贡献涉及对使用自适应滤波进行4-D心脏MR图像高质量重采样的研究。我们展示了使用自适应滤波获得的高质量结果,并描述了它可以改善医学图像自动分析的方法。

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