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The CrowdWater game: A playful way to improve the accuracy of crowdsourced water level class data

Data quality control is important for any data collection program, especially in citizen science projects, where it is more likely that errors occur due to the human factor. Ideally, data quality control in citizen science projects is also crowdsourced so that it can handle large amounts of data. He...

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Autores principales: Strobl, Barbara, Etter, Simon, van Meerveld, Ilja, Seibert, Jan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6763123/
https://www.ncbi.nlm.nih.gov/pubmed/31557184
http://dx.doi.org/10.1371/journal.pone.0222579
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author Strobl, Barbara
Etter, Simon
van Meerveld, Ilja
Seibert, Jan
author_facet Strobl, Barbara
Etter, Simon
van Meerveld, Ilja
Seibert, Jan
author_sort Strobl, Barbara
collection PubMed
description Data quality control is important for any data collection program, especially in citizen science projects, where it is more likely that errors occur due to the human factor. Ideally, data quality control in citizen science projects is also crowdsourced so that it can handle large amounts of data. Here we present the CrowdWater game as a gamified method to check crowdsourced water level class data that are submitted by citizen scientists through the CrowdWater app. The app uses a virtual staff gauge approach, which means that a digital scale is added to the first picture taken at a site and this scale is used for water level class observations at different times. In the game, participants classify water levels based on the comparison of the new picture with the picture containing the virtual staff gauge. By March 2019, 153 people had played the CrowdWater game and 841 pictures were classified. The average water level for the game votes for the classified pictures was compared to the water level class submitted through the app to determine whether the game can improve the quality of the data submitted through the app. For about 70% of the classified pictures, the water level class was the same for the CrowdWater app and game. For a quarter of the classified pictures, there was disagreement between the value submitted through the app and the average game vote. Expert judgement suggests that for three quarters of these cases, the game based average value was correct. The initial results indicate that the CrowdWater game helps to identify erroneous water level class observations from the CrowdWater app and provides a useful approach for crowdsourced data quality control. This study thus demonstrates the potential of gamified approaches for data quality control in citizen science projects.
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spelling pubmed-67631232019-10-12 The CrowdWater game: A playful way to improve the accuracy of crowdsourced water level class data Strobl, Barbara Etter, Simon van Meerveld, Ilja Seibert, Jan PLoS One Research Article Data quality control is important for any data collection program, especially in citizen science projects, where it is more likely that errors occur due to the human factor. Ideally, data quality control in citizen science projects is also crowdsourced so that it can handle large amounts of data. Here we present the CrowdWater game as a gamified method to check crowdsourced water level class data that are submitted by citizen scientists through the CrowdWater app. The app uses a virtual staff gauge approach, which means that a digital scale is added to the first picture taken at a site and this scale is used for water level class observations at different times. In the game, participants classify water levels based on the comparison of the new picture with the picture containing the virtual staff gauge. By March 2019, 153 people had played the CrowdWater game and 841 pictures were classified. The average water level for the game votes for the classified pictures was compared to the water level class submitted through the app to determine whether the game can improve the quality of the data submitted through the app. For about 70% of the classified pictures, the water level class was the same for the CrowdWater app and game. For a quarter of the classified pictures, there was disagreement between the value submitted through the app and the average game vote. Expert judgement suggests that for three quarters of these cases, the game based average value was correct. The initial results indicate that the CrowdWater game helps to identify erroneous water level class observations from the CrowdWater app and provides a useful approach for crowdsourced data quality control. This study thus demonstrates the potential of gamified approaches for data quality control in citizen science projects. Public Library of Science 2019-09-26 /pmc/articles/PMC6763123/ /pubmed/31557184 http://dx.doi.org/10.1371/journal.pone.0222579 Text en © 2019 Strobl et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Strobl, Barbara
Etter, Simon
van Meerveld, Ilja
Seibert, Jan
The CrowdWater game: A playful way to improve the accuracy of crowdsourced water level class data
title The CrowdWater game: A playful way to improve the accuracy of crowdsourced water level class data
title_full The CrowdWater game: A playful way to improve the accuracy of crowdsourced water level class data
title_fullStr The CrowdWater game: A playful way to improve the accuracy of crowdsourced water level class data
title_full_unstemmed The CrowdWater game: A playful way to improve the accuracy of crowdsourced water level class data
title_short The CrowdWater game: A playful way to improve the accuracy of crowdsourced water level class data
title_sort crowdwater game: a playful way to improve the accuracy of crowdsourced water level class data
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6763123/
https://www.ncbi.nlm.nih.gov/pubmed/31557184
http://dx.doi.org/10.1371/journal.pone.0222579
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