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The use of pseudo-multivariate standard error to improve the sampling design of coral monitoring programs

The characteristics of coral reef sampling and monitoring are highly variable, with numbers of units and sampling effort varying from one study to another. Numerous works have been carried out to determine an appropriate effect size through statistical power; however, these were always from a univar...

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Autores principales: Montilla, Luis M., Miyazawa, Emy, Ascanio, Alfredo, López-Hernández, María, Mariño-Briceño, Gloria, Rebolledo-Sánchez, Zlatka, Rivera, Andreína, Mancilla, Daniela S., Verde, Alejandra, Cróquer, Aldo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: PeerJ Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7183304/
https://www.ncbi.nlm.nih.gov/pubmed/32351778
http://dx.doi.org/10.7717/peerj.8429
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author Montilla, Luis M.
Miyazawa, Emy
Ascanio, Alfredo
López-Hernández, María
Mariño-Briceño, Gloria
Rebolledo-Sánchez, Zlatka
Rivera, Andreína
Mancilla, Daniela S.
Verde, Alejandra
Cróquer, Aldo
author_facet Montilla, Luis M.
Miyazawa, Emy
Ascanio, Alfredo
López-Hernández, María
Mariño-Briceño, Gloria
Rebolledo-Sánchez, Zlatka
Rivera, Andreína
Mancilla, Daniela S.
Verde, Alejandra
Cróquer, Aldo
author_sort Montilla, Luis M.
collection PubMed
description The characteristics of coral reef sampling and monitoring are highly variable, with numbers of units and sampling effort varying from one study to another. Numerous works have been carried out to determine an appropriate effect size through statistical power; however, these were always from a univariate perspective. In this work, we used the pseudo multivariate dissimilarity-based standard error (MultSE) approach to assess the precision of sampling scleractinian coral assemblages in reefs of Venezuela between 2017 and 2018 when using different combinations of number of transects, quadrats and points. For this, the MultSE of 36 sites previously sampled was estimated, using four 30m-transects with 15 photo-quadrats each and 25 random points per quadrat. We obtained that the MultSE was highly variable between sites and is not correlated with the univariate standard error nor with the richness of species. Then, a subset of sites was re-annotated using 100 uniformly distributed points, which allowed the simulation of different numbers of transects per site, quadrats per transect and points per quadrat using resampling techniques. The magnitude of the MultSE stabilized by adding more transects, however, adding more quadrats or points does not improve the estimate. For this case study, the error was reduced by half when using 10 transects, 10 quadrats per transect and 25 points per quadrat. We recommend the use of MultSE in reef monitoring programs, in particular when conducting pilot surveys to optimize the estimation of the community structure.
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spelling pubmed-71833042020-04-29 The use of pseudo-multivariate standard error to improve the sampling design of coral monitoring programs Montilla, Luis M. Miyazawa, Emy Ascanio, Alfredo López-Hernández, María Mariño-Briceño, Gloria Rebolledo-Sánchez, Zlatka Rivera, Andreína Mancilla, Daniela S. Verde, Alejandra Cróquer, Aldo PeerJ Ecology The characteristics of coral reef sampling and monitoring are highly variable, with numbers of units and sampling effort varying from one study to another. Numerous works have been carried out to determine an appropriate effect size through statistical power; however, these were always from a univariate perspective. In this work, we used the pseudo multivariate dissimilarity-based standard error (MultSE) approach to assess the precision of sampling scleractinian coral assemblages in reefs of Venezuela between 2017 and 2018 when using different combinations of number of transects, quadrats and points. For this, the MultSE of 36 sites previously sampled was estimated, using four 30m-transects with 15 photo-quadrats each and 25 random points per quadrat. We obtained that the MultSE was highly variable between sites and is not correlated with the univariate standard error nor with the richness of species. Then, a subset of sites was re-annotated using 100 uniformly distributed points, which allowed the simulation of different numbers of transects per site, quadrats per transect and points per quadrat using resampling techniques. The magnitude of the MultSE stabilized by adding more transects, however, adding more quadrats or points does not improve the estimate. For this case study, the error was reduced by half when using 10 transects, 10 quadrats per transect and 25 points per quadrat. We recommend the use of MultSE in reef monitoring programs, in particular when conducting pilot surveys to optimize the estimation of the community structure. PeerJ Inc. 2020-04-22 /pmc/articles/PMC7183304/ /pubmed/32351778 http://dx.doi.org/10.7717/peerj.8429 Text en ©2020 Montilla et al. https://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, reproduction and adaptation in any medium and for any purpose provided that it is properly attributed. For attribution, the original author(s), title, publication source (PeerJ) and either DOI or URL of the article must be cited.
spellingShingle Ecology
Montilla, Luis M.
Miyazawa, Emy
Ascanio, Alfredo
López-Hernández, María
Mariño-Briceño, Gloria
Rebolledo-Sánchez, Zlatka
Rivera, Andreína
Mancilla, Daniela S.
Verde, Alejandra
Cróquer, Aldo
The use of pseudo-multivariate standard error to improve the sampling design of coral monitoring programs
title The use of pseudo-multivariate standard error to improve the sampling design of coral monitoring programs
title_full The use of pseudo-multivariate standard error to improve the sampling design of coral monitoring programs
title_fullStr The use of pseudo-multivariate standard error to improve the sampling design of coral monitoring programs
title_full_unstemmed The use of pseudo-multivariate standard error to improve the sampling design of coral monitoring programs
title_short The use of pseudo-multivariate standard error to improve the sampling design of coral monitoring programs
title_sort use of pseudo-multivariate standard error to improve the sampling design of coral monitoring programs
topic Ecology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7183304/
https://www.ncbi.nlm.nih.gov/pubmed/32351778
http://dx.doi.org/10.7717/peerj.8429
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