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Empirical analysis and modeling of Argos Doppler location errors in Romania

BACKGROUND: Advances in wildlife tracking technology have allowed researchers to understand the spatial ecology of many terrestrial and aquatic animal species. Argos Doppler is a technology that is widely used for wildlife tracking owing to the small size and low weight of the Argos transmitters. Th...

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Autores principales: Rozylowicz, Laurentiu, Bodescu, Florian P., Ciocanea, Cristiana M., Gavrilidis, Athanasios A., Manolache, Steluta, Matache, Marius L., Miu, Iulia V., Moale, Ionut C., Nita, Andreea, Popescu, Viorel D.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: PeerJ Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6360076/
https://www.ncbi.nlm.nih.gov/pubmed/30723631
http://dx.doi.org/10.7717/peerj.6362
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author Rozylowicz, Laurentiu
Bodescu, Florian P.
Ciocanea, Cristiana M.
Gavrilidis, Athanasios A.
Manolache, Steluta
Matache, Marius L.
Miu, Iulia V.
Moale, Ionut C.
Nita, Andreea
Popescu, Viorel D.
author_facet Rozylowicz, Laurentiu
Bodescu, Florian P.
Ciocanea, Cristiana M.
Gavrilidis, Athanasios A.
Manolache, Steluta
Matache, Marius L.
Miu, Iulia V.
Moale, Ionut C.
Nita, Andreea
Popescu, Viorel D.
author_sort Rozylowicz, Laurentiu
collection PubMed
description BACKGROUND: Advances in wildlife tracking technology have allowed researchers to understand the spatial ecology of many terrestrial and aquatic animal species. Argos Doppler is a technology that is widely used for wildlife tracking owing to the small size and low weight of the Argos transmitters. This allows them to be fitted to small-bodied species. The longer lifespan of the Argos units in comparison to units outfitted with miniaturized global positioning system (GPS) technology has also recommended their use. In practice, large Argos location errors often occur due to communication conditions such as transmitter settings, local environment, and the behavior of the tracked individual. METHODS: Considering the geographic specificity of errors and the lack of benchmark studies in Eastern Europe, the research objectives were: (1) to evaluate the accuracy of Argos Doppler technology under various environmental conditions in Romania, (2) to investigate the effectiveness of straightforward destructive filters for improving Argos Doppler data quality, and (3) to provide guidelines for processing Argos Doppler wildlife monitoring data. The errors associated with Argos locations in four geographic locations in Romania were assessed during static, low-speed and high-speed tests. The effectiveness of the Douglas Argos distance angle filter algorithm was then evaluated to ascertain its effect on the minimization of localization errors. RESULTS: Argos locations received in the tests had larger associated horizontal errors than those indicated by the operator of the Argos system, including under ideal reception conditions. Positional errors were similar to those obtained in other studies outside of Europe. The errors were anisotropic, with larger longitudinal errors for the vast majority of the data. Errors were mostly related to speed of the Argos transmitter at the time of reception, but other factors such as topographical conditions and orientation of antenna at the time of the transmission also contributed to receiving low-quality data. The Douglas Argos filter successfully excluded the largest errors while retaining a large amount of data when the threshold was set to the local scale (two km). DISCUSSION: Filter selection requires knowledge about the movement patterns and behavior of the species of interest, and the parametrization of the selected filter typically requires a trial and error approach. Selecting the proper filter reduces the errors while retaining a large amount of data. However, the post-processed data typically includes large positional errors; thus, we recommend incorporating Argos error metrics (e.g., error ellipse) or use complex modeling approaches when working with filtered data.
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spelling pubmed-63600762019-02-05 Empirical analysis and modeling of Argos Doppler location errors in Romania Rozylowicz, Laurentiu Bodescu, Florian P. Ciocanea, Cristiana M. Gavrilidis, Athanasios A. Manolache, Steluta Matache, Marius L. Miu, Iulia V. Moale, Ionut C. Nita, Andreea Popescu, Viorel D. PeerJ Biogeography BACKGROUND: Advances in wildlife tracking technology have allowed researchers to understand the spatial ecology of many terrestrial and aquatic animal species. Argos Doppler is a technology that is widely used for wildlife tracking owing to the small size and low weight of the Argos transmitters. This allows them to be fitted to small-bodied species. The longer lifespan of the Argos units in comparison to units outfitted with miniaturized global positioning system (GPS) technology has also recommended their use. In practice, large Argos location errors often occur due to communication conditions such as transmitter settings, local environment, and the behavior of the tracked individual. METHODS: Considering the geographic specificity of errors and the lack of benchmark studies in Eastern Europe, the research objectives were: (1) to evaluate the accuracy of Argos Doppler technology under various environmental conditions in Romania, (2) to investigate the effectiveness of straightforward destructive filters for improving Argos Doppler data quality, and (3) to provide guidelines for processing Argos Doppler wildlife monitoring data. The errors associated with Argos locations in four geographic locations in Romania were assessed during static, low-speed and high-speed tests. The effectiveness of the Douglas Argos distance angle filter algorithm was then evaluated to ascertain its effect on the minimization of localization errors. RESULTS: Argos locations received in the tests had larger associated horizontal errors than those indicated by the operator of the Argos system, including under ideal reception conditions. Positional errors were similar to those obtained in other studies outside of Europe. The errors were anisotropic, with larger longitudinal errors for the vast majority of the data. Errors were mostly related to speed of the Argos transmitter at the time of reception, but other factors such as topographical conditions and orientation of antenna at the time of the transmission also contributed to receiving low-quality data. The Douglas Argos filter successfully excluded the largest errors while retaining a large amount of data when the threshold was set to the local scale (two km). DISCUSSION: Filter selection requires knowledge about the movement patterns and behavior of the species of interest, and the parametrization of the selected filter typically requires a trial and error approach. Selecting the proper filter reduces the errors while retaining a large amount of data. However, the post-processed data typically includes large positional errors; thus, we recommend incorporating Argos error metrics (e.g., error ellipse) or use complex modeling approaches when working with filtered data. PeerJ Inc. 2019-01-31 /pmc/articles/PMC6360076/ /pubmed/30723631 http://dx.doi.org/10.7717/peerj.6362 Text en © 2019 Rozylowicz 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, 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 Biogeography
Rozylowicz, Laurentiu
Bodescu, Florian P.
Ciocanea, Cristiana M.
Gavrilidis, Athanasios A.
Manolache, Steluta
Matache, Marius L.
Miu, Iulia V.
Moale, Ionut C.
Nita, Andreea
Popescu, Viorel D.
Empirical analysis and modeling of Argos Doppler location errors in Romania
title Empirical analysis and modeling of Argos Doppler location errors in Romania
title_full Empirical analysis and modeling of Argos Doppler location errors in Romania
title_fullStr Empirical analysis and modeling of Argos Doppler location errors in Romania
title_full_unstemmed Empirical analysis and modeling of Argos Doppler location errors in Romania
title_short Empirical analysis and modeling of Argos Doppler location errors in Romania
title_sort empirical analysis and modeling of argos doppler location errors in romania
topic Biogeography
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6360076/
https://www.ncbi.nlm.nih.gov/pubmed/30723631
http://dx.doi.org/10.7717/peerj.6362
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