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Automatic detection of LV contours in nuclear medicine using geometrical information and a neural net

机译:使用几何信息和神经网络自动检测核医学中的LV轮廓

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Presents a method that makes use of a neural net and geometrical information for the automatic detection of left ventricle (LV) contours in nuclear medicine images. Although the method has been developed for LV contour detection, it can be extended to other classes of structures and images. Learning is carried out by feeding the system with a series of images and their corresponding LV contours drawn by by an operator. The system extracts both pixel-value and geometrical information that is used for training the neural network. Once trained, the network is able to automatically detect LV contours. Apart from presenting errors that are compatible with several other automatic detection techniques the present method has the clear advantage of being able to store geometrical and pixel intensity information that is learned from examples.
机译:呈现一种方法,该方法利用神经网络和几何信息,用于在核医学图像中自动检测左心室(LV)轮廓。尽管该方法已经开发用于LV轮廓检测,但它可以扩展到其他类的结构和图像。通过用一系列图像馈送系统和由操作员绘制的相应的LV轮廓来进行学习。系统提取用于训练神经网络的像素值和几何信息。一旦培训,网络就能自动检测LV轮廓。除了兼容与几个其他自动检测技术兼容的误差之外,本方法具有能够存储从示例中学到的几何和像素强度信息的清晰优势。

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