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Can we Distinguish Between Benign and Malignant Breast Tumors in DCE-MRI by Studying a Tumor's Most Suspect Region Only?

机译:我们可以通过研究肿瘤最疑似地区的DCE-MRI来区分DCE-MRI的良性和恶性乳腺肿瘤吗?

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We investigate the task of breast tumor classification based on dynamic contrast-enhanced magnetic resonance image data (DCE-MRI). Our objective is to study how the formation of regions of similar voxels contributes to distinguishing between benign and malignant tumors. First, we perform clustering on each tumor with different algorithms and parameter settings, and then combine the clustering results to identify the most suspect region of the tumor and derive features from it. With these features we train classifiers on a set of tumors that are difficult to classify, even for human experts. We show that the features of the most suspect region alone cannot distinguish between benign and malignant tumors, yet the properties of this region are indicative of tumor malignancy for the dataset we studied.
机译:我们基于动态对比度增强的磁共振图像数据(DCE-MRI)来研究乳腺肿瘤分类的任务。我们的目的是研究类似毒素的地区的形成如何有助于区分良性和恶性肿瘤。首先,我们在每个肿瘤上对不同算法和参数设置进行聚类,然后将聚类结果组合以识别肿瘤最疑虑的肿瘤和来自它的衍生特征。对于这些功能,我们甚至难以分类的肿瘤上的分类器,即使是人类专家也是如此。我们表明,单独的最可疑地区的特征不能区分良性和恶性肿瘤,但该区域的性质表明我们研究的数据集的肿瘤​​恶性肿瘤。

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