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Automatic classification of colorectal and prostatic histologic tumor images using multiscale multispectral local binary pattern texture features and stacked generalization

机译:使用多尺度多光谱局部二值模式纹理特征和堆叠泛化对结直肠和前列腺组织学肿瘤图像进行自动分类

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This paper proposes a new multispectral multiscale local binary pattern feature extraction method for automatic classification of colorectal and prostatic tumor biopsies samples. A multilevel stacked generalization classification technique is also proposed and the key idea of the paper considers a grade diagnostic problem rather than a simple malignant versus tumorous tissue problem using the concept of multispectral imagery in both the visible and near infrared spectra. To validate the proposed algorithm performances, a comparative study against related works using multispectral imagery is conducted including an evaluation on three different multiclass datasets of multispectral histology images: two representing images of colorectal biopsies - one dataset was acquired in the visible spectrum while the second captures near-infrared spectra. The proposed algorithm achieves an accuracy of 99.6% on the different datasets. The results obtained demonstrate the advantages of infrared wavelengths to capture more efficiently the most discriminative information. The results obtained show that our proposed algorithm outperforms other similar methods. (c) 2017 Published by Elsevier B.V.
机译:本文提出了一种新的多光谱多尺度局部二值模式特征提取方法,用于大肠和前列腺肿瘤活检样品的自动分类。还提出了一种多层次的堆叠泛化分类技术,并且本文的关键思想是使用可见光谱和近红外光谱中的多光谱图像的概念来考虑等级诊断问题,而不是简单的恶性与肿瘤组织问题。为了验证所提出的算法性能,针对使用多光谱图像的相关工作进行了比较研究,包括对三个不同的多光谱组织学图像的多类数据集进行评估:两个代表结肠直肠活检的图像-一个数据集是在可见光谱中采集的,而第二个是捕获的近红外光谱。该算法在不同数据集上的准确率达到了99.6%。获得的结果证明了红外波长具有优势,可以更有效地捕获最有区别的信息。获得的结果表明,我们提出的算法优于其他类似方法。 (c)2017年由Elsevier B.V.

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