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Two gas metal arc welding process dataset of arc parameters and input parameters
The dataset was collected from experiments using the gas metal arc welding (GMAW) process. The experiments were planned with Central Composite Design to obtain a greater variety of data. This variability helps to develop a predictive model more generalistic with machine learning techniques. It was c...
Autores principales: | , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Elsevier
2021
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7881253/ https://www.ncbi.nlm.nih.gov/pubmed/33614869 http://dx.doi.org/10.1016/j.dib.2021.106790 |
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author | Thompson Martinez, Rogfel Alvarez Bestard, Guillermo Absi Alfaro, Sadek C. |
author_facet | Thompson Martinez, Rogfel Alvarez Bestard, Guillermo Absi Alfaro, Sadek C. |
author_sort | Thompson Martinez, Rogfel |
collection | PubMed |
description | The dataset was collected from experiments using the gas metal arc welding (GMAW) process. The experiments were planned with Central Composite Design to obtain a greater variety of data. This variability helps to develop a predictive model more generalistic with machine learning techniques. It was collected welding arc images and weld bead geometry images. Welding arc images were processed with a deep learning technique to detect drop detachment and short circuit transfer mode. These detections were useful to calc drop detachment frequency, short circuit frequency, and molten volume in every moment of GMAW process time. It was obtained the weld bead geometry parameters by process time too. All these data, joining input parameters were correlated, resulting in the datasets shown in this article. |
format | Online Article Text |
id | pubmed-7881253 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2021 |
publisher | Elsevier |
record_format | MEDLINE/PubMed |
spelling | pubmed-78812532021-02-18 Two gas metal arc welding process dataset of arc parameters and input parameters Thompson Martinez, Rogfel Alvarez Bestard, Guillermo Absi Alfaro, Sadek C. Data Brief Data Article The dataset was collected from experiments using the gas metal arc welding (GMAW) process. The experiments were planned with Central Composite Design to obtain a greater variety of data. This variability helps to develop a predictive model more generalistic with machine learning techniques. It was collected welding arc images and weld bead geometry images. Welding arc images were processed with a deep learning technique to detect drop detachment and short circuit transfer mode. These detections were useful to calc drop detachment frequency, short circuit frequency, and molten volume in every moment of GMAW process time. It was obtained the weld bead geometry parameters by process time too. All these data, joining input parameters were correlated, resulting in the datasets shown in this article. Elsevier 2021-01-29 /pmc/articles/PMC7881253/ /pubmed/33614869 http://dx.doi.org/10.1016/j.dib.2021.106790 Text en © 2021 The Authors. Published by Elsevier Inc. 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 | Data Article Thompson Martinez, Rogfel Alvarez Bestard, Guillermo Absi Alfaro, Sadek C. Two gas metal arc welding process dataset of arc parameters and input parameters |
title | Two gas metal arc welding process dataset of arc parameters and input parameters |
title_full | Two gas metal arc welding process dataset of arc parameters and input parameters |
title_fullStr | Two gas metal arc welding process dataset of arc parameters and input parameters |
title_full_unstemmed | Two gas metal arc welding process dataset of arc parameters and input parameters |
title_short | Two gas metal arc welding process dataset of arc parameters and input parameters |
title_sort | two gas metal arc welding process dataset of arc parameters and input parameters |
topic | Data Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7881253/ https://www.ncbi.nlm.nih.gov/pubmed/33614869 http://dx.doi.org/10.1016/j.dib.2021.106790 |
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