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Multi-scale directional-filtering-based method for follicular lymphoma grading - Springer

机译:基于多尺度定向滤波的滤泡性淋巴瘤分级方法-Springer

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摘要

Follicular lymphoma (FL) is a group of malignancies of lymphocyte origin that arise from lymph nodes, spleen, and bone marrow in the lymphatic system. It is the second most common non-Hodgkins lymphoma. Characteristic of FL is the presence of follicle center B cells consisting of centrocytes and centroblasts. Typically, FL images are graded by an expert manually counting the centroblasts in an image. This is time consuming. In this paper, we present a novel multi-scale directional filtering scheme and utilize it to classify FL images into different grades. Instead of counting the centroblasts individually, we classify the texture formed by centroblasts. We apply our multi-scale directional filtering scheme in two scales and along eight orientations, and use the mean and the standard deviation of each filter output as feature parameters. For classification, we use support vector machines with the radial basis function kernel. We map the features into two dimensions using linear discriminant analysis prior to classification. Experimental results are presented.
机译:滤泡性淋巴瘤(FL)是由淋巴系统,淋巴结,脾脏和骨髓引起的一组淋巴细胞恶性肿瘤。它是第二大最常见的非霍奇金淋巴瘤。 FL的特征是由中心细胞和成核细胞组成的卵泡中心B细胞的存在。通常,FL图像由专家手动对图像中的成纤维细胞进行计数来分级。这很费时间。在本文中,我们提出了一种新颖的多尺度定向滤波方案,并将其用于将FL图像分类为不同等级。无需单独计算中心粒,我们对中心粒形成的纹理进行分类。我们在两个尺度和八个方向上应用我们的多尺度定向滤波方案,并使用每个滤波器输​​出的平均值和标准偏差作为特征参数。对于分类,我们使用带有径向基函数内核的支持向量机。在分类之前,我们使用线性判别分析将特征映射到二维。给出实验结果。

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