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Deep metabolome: Applications of deep learning in metabolomics

In the past few years, deep learning has been successfully applied to various omics data. However, the applications of deep learning in metabolomics are still relatively low compared to others omics. Currently, data pre-processing using convolutional neural network architecture appears to benefit th...

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Autores principales: Pomyen, Yotsawat, Wanichthanarak, Kwanjeera, Poungsombat, Patcha, Fahrmann, Johannes, Grapov, Dmitry, Khoomrung, Sakda
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Research Network of Computational and Structural Biotechnology 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7575644/
https://www.ncbi.nlm.nih.gov/pubmed/33133423
http://dx.doi.org/10.1016/j.csbj.2020.09.033
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author Pomyen, Yotsawat
Wanichthanarak, Kwanjeera
Poungsombat, Patcha
Fahrmann, Johannes
Grapov, Dmitry
Khoomrung, Sakda
author_facet Pomyen, Yotsawat
Wanichthanarak, Kwanjeera
Poungsombat, Patcha
Fahrmann, Johannes
Grapov, Dmitry
Khoomrung, Sakda
author_sort Pomyen, Yotsawat
collection PubMed
description In the past few years, deep learning has been successfully applied to various omics data. However, the applications of deep learning in metabolomics are still relatively low compared to others omics. Currently, data pre-processing using convolutional neural network architecture appears to benefit the most from deep learning. Compound/structure identification and quantification using artificial neural network/deep learning performed relatively better than traditional machine learning techniques, whereas only marginally better results are observed in biological interpretations. Before deep learning can be effectively applied to metabolomics, several challenges should be addressed, including metabolome-specific deep learning architectures, dimensionality problems, and model evaluation regimes.
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spelling pubmed-75756442020-10-30 Deep metabolome: Applications of deep learning in metabolomics Pomyen, Yotsawat Wanichthanarak, Kwanjeera Poungsombat, Patcha Fahrmann, Johannes Grapov, Dmitry Khoomrung, Sakda Comput Struct Biotechnol J Review In the past few years, deep learning has been successfully applied to various omics data. However, the applications of deep learning in metabolomics are still relatively low compared to others omics. Currently, data pre-processing using convolutional neural network architecture appears to benefit the most from deep learning. Compound/structure identification and quantification using artificial neural network/deep learning performed relatively better than traditional machine learning techniques, whereas only marginally better results are observed in biological interpretations. Before deep learning can be effectively applied to metabolomics, several challenges should be addressed, including metabolome-specific deep learning architectures, dimensionality problems, and model evaluation regimes. Research Network of Computational and Structural Biotechnology 2020-10-01 /pmc/articles/PMC7575644/ /pubmed/33133423 http://dx.doi.org/10.1016/j.csbj.2020.09.033 Text en © 2020 The Author(s) http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Review
Pomyen, Yotsawat
Wanichthanarak, Kwanjeera
Poungsombat, Patcha
Fahrmann, Johannes
Grapov, Dmitry
Khoomrung, Sakda
Deep metabolome: Applications of deep learning in metabolomics
title Deep metabolome: Applications of deep learning in metabolomics
title_full Deep metabolome: Applications of deep learning in metabolomics
title_fullStr Deep metabolome: Applications of deep learning in metabolomics
title_full_unstemmed Deep metabolome: Applications of deep learning in metabolomics
title_short Deep metabolome: Applications of deep learning in metabolomics
title_sort deep metabolome: applications of deep learning in metabolomics
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7575644/
https://www.ncbi.nlm.nih.gov/pubmed/33133423
http://dx.doi.org/10.1016/j.csbj.2020.09.033
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