Space-time multi-level modeling for zooplankton abundance employing double data fusion and calibration
Resumen: An important objective for marine biologists is to forecast the distribution and abundance of planktivorous marine predators. To do so, it is critically important to understand the spatiotemporal dynamics of their prey. Here, the prey we study are zooplankton and we build a novel space-time hierarchical fusion model to describe the distribution and abundance of zooplankton species in Cape Cod Bay (CCB), MA, USA. The data were collected irregularly in space and time at sites within the first half of the year over a 17 year period, using two different sampling methods. We focus on sea surface zooplankton abundance and incorporate sea surface temperature as a primary driver, also collected with two different sampling methods. So, with two sources for each, we observe true abundance or true sea surface temperature with measurement error. To account for such error, we apply calibrations to align the data sources and use the fusion model to develop a prediction of daily spatial zooplankton abundance surfaces throughout CCB. To infer average abundance on a given day within a given year in CCB, we present a marginalization of the zooplankton abundance surface. We extend the inference to consider abundance averaged to a bi-weekly or annual scale as well as to make an annual comparison of abundance.
Idioma: Inglés
DOI: 10.1007/s10651-023-00583-6
Año: 2023
Publicado en: ENVIRONMENTAL AND ECOLOGICAL STATISTICS 30, 4 (2023), 769-795
ISSN: 1352-8505

Factor impacto JCR: 3.0 (2023)
Categ. JCR: STATISTICS & PROBABILITY rank: 16 / 168 = 0.095 (2023) - Q1 - T1
Categ. JCR: MATHEMATICS, INTERDISCIPLINARY APPLICATIONS rank: 22 / 135 = 0.163 (2023) - Q1 - T1
Categ. JCR: ENVIRONMENTAL SCIENCES rank: 169 / 358 = 0.472 (2023) - Q2 - T2

Factor impacto CITESCORE: 5.9 - Statistics and Probability (Q1) - Statistics, Probability and Uncertainty (Q1) - Environmental Science (all) (Q2)

Factor impacto SCIMAGO: 0.605 - Environmental Science (miscellaneous) (Q2) - Statistics, Probability and Uncertainty (Q2) - Statistics and Probability (Q2)

Tipo y forma: Article (Published version)
Área (Departamento): Área Estadís. Investig. Opera. (Dpto. Métodos Estadísticos)

Creative Commons You must give appropriate credit, provide a link to the license, and indicate if changes were made. You may do so in any reasonable manner, but not in any way that suggests the licensor endorses you or your use.


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