首页> 外文期刊>Computerized Medical Imaging and Graphics: The Official Jounal of the Computerized Medical Imaging Society >Orthogonal subspace projection-based approaches to classification of MR image sequences.
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Orthogonal subspace projection-based approaches to classification of MR image sequences.

机译:基于正交子空间投影的MR图像序列分类方法。

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Orthogonal subspace projection (OSP) approach has shown success in hyperspectral image classification. Recently, the feasibility of applying OSP to multispectral image classification was also demonstrated via SPOT (Satellite Pour 1'Observation de la Terra) and Landsat (Land Satellite) images. Since an MR (magnetic resonance) image sequence is also acquired by multiple spectral channels (bands), this paper presents a new application of OSP in MR image classification. The idea is to model an MR image pixel in the sequence as a linear mixture of substances (such as white matter, gray matter, cerebral spinal fluid) of interest from which each of these substances can be classified by a specific subspace projection operator followed by a desired matched filter. The experimental results show that OSP provides a promising alternative to existing MR image classification techniques.
机译:正交子空间投影(OSP)方法已在高光谱图像分类中显示出成功。最近,还通过SPOT(卫星倾泻1'Observation de la Terra)和Landsat(陆地卫星)图像证明了将OSP应用于多光谱图像分类的可行性。由于还通过多个频谱通道(频带)获取MR(磁共振)图像序列,因此本文提出了OSP在MR图像分类中的新应用。这个想法是将MR图像像素按感兴趣的物质(例如白质,灰质,脑脊髓液)的线性混合物建模,然后可以由特定的子空间投影算子对每种物质进行分类所需的匹配滤波器。实验结果表明,OSP为现有MR图像分类技术提供了有希望的替代方法。

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