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Accelerated Nuclear Magnetic Resonance Spectroscopy with Deep Learning
Authors:Xiaobo Qu  Yihui Huang  Hengfa Lu  Tianyu Qiu  Di Guo  Tatiana Agback  Vladislav Orekhov  Zhong Chen
Abstract:Nuclear magnetic resonance (NMR) spectroscopy serves as an indispensable tool in chemistry and biology but often suffers from long experimental times. We present a proof‐of‐concept of the application of deep learning and neural networks for high‐quality, reliable, and very fast NMR spectra reconstruction from limited experimental data. We show that the neural network training can be achieved using solely synthetic NMR signals, which lifts the prohibiting demand for a large volume of realistic training data usually required for a deep learning approach.
Keywords:artificial intelligence  deep learning  fast sampling  NMR spectroscopy
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