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Published on: July 17, 2018
Direct deduction of chemical class from NMR spectra
Stefan Kuhn1, Carlos Cobas2, Agustin Barba2
1Institute of Computer Science, University of Tartu, Narva mnt. 18, Tartu 51009, Tartumaa, Estonia; School of Computer Science and Informatics, De Montfort University, The Gateway, Leicester LE1 9BH, United Kingdom.
Abstract:
This paper presents a proof-of-concept method for classifying chemical compounds directly from NMR data without performing structure elucidation. This can help to reduce the time in finding good structure candidates, as in most cases matching must be done by a human engineer, or at the very least a process for matching must be meaningfully interpreted by one. The method identified as suitable for classification is a convolutional neural network (CNN). Other methods, including clustering and image registration, have not been found to be suitable for the task in a comparative analysis. The result shows that deep learning can offer solutions to spectral interpretation problems.
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