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DEVELOPING SYSTEM FOR REMOTE CLINICAL EVALUATION OF COMPUTED TOMOGRAPHY AND B-MODE ULTRASOUND IMAGES

机译:计算机断层扫描和B超图像远程临床评估的开发系统

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A computed-aided diagnostic system (CAD) for remote automatic classification of CT and B-mode ultrasound images is described. The system is capable of discriminating among focal liver lesions and chronic thyroid inflammatory diseases. The application is based on texture analysis. Two types of texture features are used in the system: 22 first-order features computed from the original gray levels and four different gray-level transformations of an image and 108 second-order features (computed from co-occurrence matrices) which capture the spatial organization of texture primitives. The classification of images is performed by network of Bayes classifiers with majority voting. The classifier was trained by Gaussian mixture model method and classifies images according to their texture feature values. In testing phase the system achieved 100% classification success rate when using four principal descriptive features. The results are sufficiently consistent under small changes in image tool setting and scan type. The implementation of the remote CAD system is promising for automatic classification.
机译:描述了一种用于CT和B模式超声图像的远程自动分类的计算机辅助诊断系统(CAD)。该系统能够区分肝脏局灶性病变和慢性甲状腺炎性疾病。该应用程序基于纹理分析。系统中使用两种类型的纹理特征:从原始灰度级计算出的22个一阶特征和图像的四个不同灰度变换,以及捕获空间的108个二阶特征(从共现矩阵计算)纹理基元的组织。图像的分类由具有多数投票权的贝叶斯分类器网络执行。通过高斯混合模型方法训练分类器,并根据图像的纹理特征值对图像进行分类。在测试阶段,使用四个主要描述功能时,系统达到100%的分类成功率。在图像工具设置和扫描类型进行较小更改的情况下,结果是足够一致的。远程CAD系统的实现有望实现自动分类。

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