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Application of intelligent processing and 4-D deformation modeling to the detection of abnormal motion patterns

机译:智能处理的应用和4-D变形建模在异常运动模式检测中的应用

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The study of cardiac motion through CINE MRI is an important non-invasive diagnostic tool for cardiac abnormalities. In this paper, a method for automatic detection of abnormal motion patterns is proposed to be used as a computerized diagnostic tool for pathologic cardiac function. A multi-scale modeling method, based on a Generating-Shrinking neural network and a 4-D surface parametric model were used to extract the deformation of the myocardium from multi slice-multi phase MRI examinations. A feature extraction procedure then calculated myocardial thickening and radial deformation of the left ventricle and produced a set of motion parameters from the surface model. Input patterns consisting of the above features were fed into a feedforward neural network, which was trained to capture the normal cardiac function and to distinguish certain pathologic motion patterns.
机译:通过Cine MRI对心动的研究是心脏异常的重要非侵入性诊断工具。在本文中,提出了一种自动检测异常运动模式的方法,用作用于病理心脏功能的计算机化诊断工具。一种基于产生收缩的神经网络和4-D表面参数模型的多尺度建模方法用于从多相MRI检查中提取心肌的变形。特征提取过程然后计算左心室的心肌增稠和径向变形,并从表面模型产生一组运动参数。将由上述特征组成的输入图案被送入前馈神经网络,训练以捕获正常心脏功能并区分某些病理运动模式。

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