首页> 外文会议>2019 Applications of Electromagnetics in Modern Engineering and Medicine >Application of a regressive neural network with autoencoder for monochromatic images in ultrasound tomography
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Application of a regressive neural network with autoencoder for monochromatic images in ultrasound tomography

机译:带有自动编码器的回归神经网络在单色层析成像中单色图像的应用

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The article presents a novel approach to ultrasound tomography in industrial applications. In order to visualize the interior of a tank (reactor) filled with tap water, a single neural network enhanced with autoencoder was used. A novelty is the use of an autoencoder to improve the quality of the measurement vector. Thanks to the use of the autoencoder for denoising the input measurements in connection with the appropriately adapted neural network, the quality of the output image was improved. A robust algorithm was developed that properly reconstructs hidden objects in monochrome images with high efficiency.
机译:本文提出了一种在工业应用中进行超声层析成像的新颖方法。为了可视化装满自来水的水箱(反应器)的内部,使用了使用自动编码器增强的单个神经网络。一种新颖之处是使用自动编码器来改善测量矢量的质量。由于使用了自动编码器以结合适当适配的神经网络对输入测量值进行降噪,因此提高了输出图像的质量。开发了一种鲁棒的算法,可以高效地正确重建单色图像中的隐藏对象。

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