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首页> 外文期刊>Journal of medical systems >Diagnosis of Thyroid Nodules Based on Local Non-quantitative Multi-Directional Texture Descriptor with Rotation Invariant Characteristics for Ultrasound Image
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Diagnosis of Thyroid Nodules Based on Local Non-quantitative Multi-Directional Texture Descriptor with Rotation Invariant Characteristics for Ultrasound Image

机译:基于局部非定量多向纹理描述符对超声图像旋转不变特征的诊断甲状腺结节

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摘要

The traditional texture feature lacks the directional analysis of graphical element, so it could not better distinguish the thyroid nodule texture image formed by the rotation of graphical element. A non-quantifiable local feature is adopted in this paper to design a robust texture descriptor so as to enhance the robustness of the texture classification in the rotation and scale changes, which can improve the diagnostic accuracy of thyroid nodules in ultrasound images. First of all, the concept of local feature with rotational symmetry is introduced. It is found that many rotation invariant local features are rotational symmetric to a certain degree. Therefore, we propose a novel local feature to describe the rotation invariant properties of the texture. In order to deal with the change of rotation and scale of ultrasound thyroid nodules in image, Pairwise rotation-invariant spatial context feature is adopted to analyze the texture feature, which can combine with the scale information without increasing the dimension of the local feature. The fadopted local features have strong robustness to rotation and gray intensity variation. The experimental results show that our proposed method outperforms the existing algorithms on thyroid ultrasound data sets, which greatly improve the Diagnosis accuracy of thyroid nodules.
机译:传统的纹理特征缺乏图形元素的定向分析,因此不能更好地区分通过图形元件的旋转形成的甲状腺结节纹理图像。本文采用了不可定量的局部特征,以设计鲁棒纹理描述符,以提高旋转和比例变化中纹理分类的鲁棒性,这可以提高超声图像中甲状腺结节的诊断准确性。首先,介绍了具有旋转对称性的局部特征的概念。发现许多旋转不变局部特征在一定程度上是旋转对称的。因此,我们提出了一种新颖的本地特征来描述纹理的旋转不变性。为了处理图像中的超声甲状腺结节的旋转和刻度的变化,采用成对旋转不变的空间上下文特征来分析纹理特征,其可以与尺度信息组合而不增加本地特征的维度。 Fadopted本地特征对旋转和灰色强度变化具有很强的鲁棒性。实验结果表明,我们所提出的方法优于现有的甲状腺超声数据集上现有的算法,这大大提高了甲状腺结节的诊断准确性。

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