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Texture Characteristics for Classification of the Ultrasonic Images of Rotator Cuff Diseases

机译:转子袖带疾病超声图像分类的纹理特征

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This article proposes a study on applied the texture analysis method to classify the different disease groups that are normal, tendon inflammation, calcific tendonitis and rotator cuff tear. The supraspinatus tendon is usually involved among above-mentioned diseases progression. Four texture analysis methods that texture feature coding method, gray-level co-occurrence matrix, fractal dimension and texture spectrum are used to extract features of tissue characteristic of supraspinatus tendon. The mutual information method is independently used to select powerful feature among four texture analysis method, further, the radial basis function network to classify the ones into the four disease group. Experimental results tested on 85 images reveal that the proposed system can achieves 84% accurate rate.
机译:本文提出了对应用正常,肌腱炎症,钙化肌腱炎和旋转箍撕裂的不同疾病群的应用纹理分析方法的研究。 Supraspinatus Turnon通常涉及上述疾病进展。纹理特征编码方法,灰度级共生矩阵,分形维数和纹理谱的四种纹理分析方法用于提取冈上肌腱组织特性的特征。相互信息方法独立地用于在四个纹理分析方法中选择强大的特征,进一步,径向基函数网络将其中分类为四种疾病组。在85张图像中测试的实验结果表明,所提出的系统可以实现84%的准确率。

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