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A Pilot Study For Fragment Identification Using 2D NMR and Deep Learning

2021-03-18 · Stefan Kuhn, Eda Tumer, Simon Colreavy-Donnelly, Ricardo Moreira Borges

This paper presents a method to identify substructures in NMR spectra of mixtures, specifically 2D spectra, using a bespoke image-based Convolutional Neural Network application. This is done using HSQC and HMBC spectra separately and in combination. The application can reliably detect substructures in pure compounds, using a simple network. It can work for mixtures when trained on pure compounds only. HMBC data and the combination of HMBC and HSQC show better results than HSQC alone.

📄 PDF Abstract BibTeX arXiv:2103.12169

Code (1)

stefhk3/substructuresnmr 공식 구현 tf

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