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Computer-aided Prostate Cancer Detection using Texture Features and Clinical Features in Ultrasound Image

机译:利用超声图像中的纹理特征和临床特征进行计算机辅助前列腺癌检测

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摘要

In this paper, we propose a new prostate detection method using multiresolution autocorrelation texture features and clinical features such as location and shape of tumor. With the proposed method, we can detect cancerous tissues efficiently with high specificity (about 90–95%)and high sensitivity (about 92–96%) by the measurement of the number of correctly classified pixels. Multiresolution autocorrelation can detect cancerous tissues efficiently, and clinical knowledge helps to discriminate the cancer region by location and shape of the region and increases specificity. The support vector machine is used to classify tissues based on those features. The proposed method will be helpful in formulating a more reliable diagnosis, increasing diagnosis efficiency.
机译:在本文中,我们提出了一种使用多分辨率自相关纹理特征和临床特征(例如肿瘤的位置和形状)的前列腺检测新方法。通过提出的方法,我们可以通过测量正确分类的像素数来高效地以高特异性(约90–95%)和高灵敏度(约92–96%)检测癌组织。多分辨率自相关可以有效地检测癌组织,并且临床知识有助于通过区域的位置和形状来区分癌区域并提高特异性。支持向量机用于基于这些特征对组织进行分类。所提出的方法将有助于制定更可靠的诊断,提高诊断效率。

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