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Artificial convolution neural network techniques and applications for lung nodule detection

机译:人工卷积神经网络技术及其在肺结节检测中的应用

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We have developed a double-matching method and an artificial visual neural network technique for lung nodule detection. This neural network technique is generally applicable to the recognition of medical image pattern in gray scale imaging. The structure of the artificial neural net is a simplified network structure of human vision. The fundamental operation of the artificial neural network is local two-dimensional convolution rather than full connection with weighted multiplication. Weighting coefficients of the convolution kernels are formed by the neural network through backpropagated training. In addition, we modeled radiologists' reading procedures in order to instruct the artificial neural network to recognize the image patterns predefined and those of interest to experts in radiology. We have tested this method for lung nodule detection. The performance studies have shown the potential use of this technique in a clinical setting. This program first performed an initial nodule search with high sensitivity in detecting round objects using a sphere template double-matching technique. The artificial convolution neural network acted as a final classifier to determine whether the suspected image block contains a lung nodule. The total processing time for the automatic detection of lung nodules using both prescan and convolution neural network evaluation was about 15 seconds in a DEC Alpha workstation.
机译:我们已经开发了用于肺结节检测的双重匹配方法和人工视觉神经网络技术。这种神经网络技术通常适用于灰度成像中医学图像模式的识别。人工神经网络的结构是人类视觉的简化网络结构。人工神经网络的基本操作是局部二维卷积,而不是加权乘法的完全连接。神经网络通过反向传播训练形成卷积核的加权系数。此外,我们对放射科医生的阅读程序进行了建模,以指示人工神经网络识别预定义的图像模式以及放射学专家感兴趣的图像模式。我们已经对该肺结节检测方法进行了测试。性能研究表明该技术在临床环境中的潜在用途。该程序首先使用球体模板双重匹配技术以高灵敏度执行了初始结节搜索,以检测圆形物体。人工卷积神经网络充当最终分类器,以确定可疑图像块是否包含肺结节。在DEC Alpha工作站中,使用预扫描和卷积神经网络评估自动检测肺结节的总处理时间约为15秒。

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