Combining acoustic survey and citizen science data yields enhanced species distribution models for tropical rainforest birds

A key goal in ecology is to develop effective ways to understand species' distributions in order to facilitate both their study and conservation. Many species distribution modeling analyses have been performed using either structured survey data or unstructured citizen science data; these two p...

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Published inPloS one Vol. 20; no. 7; p. e0327944
Main Authors Rumelt, Reid, Mere Roncal, Carla, Basto, Arianna, Buřivalová, Zuzana, Searcy, Christopher
Format Journal Article
LanguageEnglish
Published United States Public Library of Science 08.07.2025
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Abstract A key goal in ecology is to develop effective ways to understand species' distributions in order to facilitate both their study and conservation. Many species distribution modeling analyses have been performed using either structured survey data or unstructured citizen science data; these two pools of data have tradeoffs in terms of data density, spatiotemporal coverage, and accuracy. Recent studies have shown that combining structured and unstructured survey data can improve the accuracy of species distribution models for birds, but most of this work has focused on north temperate bird species, using bird atlas data that are less available in the Tropics. Here, we adapted a data pooling approach from the literature on north temperate bird biology to create distribution models for a selection of secretive suboscine bird species that occur in a highly diverse region of the southwestern Amazon. Our approach combined automated acoustic monitoring detections and eBird citizen science data available for the region as well as a high resolution land cover dataset of the region's key ecological gradients. The pooled models outperformed models constructed solely with eBird data for predicting fine grain species responses to habitat gradients in intact forest, but also retained information from the citizen science dataset about species occurrence patterns in non-vegetated areas away from intact forest, including those subject to human disturbance. We present this hybrid approach as a flexible and repeatable means to produce inferences that would not easily be achievable using a single data source, and provide recommendations for other researchers seeking to replicate these methods in Amazonia as well as in other tropical regions.
AbstractList A key goal in ecology is to develop effective ways to understand species’ distributions in order to facilitate both their study and conservation. Many species distribution modeling analyses have been performed using either structured survey data or unstructured citizen science data; these two pools of data have tradeoffs in terms of data density, spatiotemporal coverage, and accuracy. Recent studies have shown that combining structured and unstructured survey data can improve the accuracy of species distribution models for birds, but most of this work has focused on north temperate bird species, using bird atlas data that are less available in the Tropics. Here, we adapted a data pooling approach from the literature on north temperate bird biology to create distribution models for a selection of secretive suboscine bird species that occur in a highly diverse region of the southwestern Amazon. Our approach combined automated acoustic monitoring detections and eBird citizen science data available for the region as well as a high resolution land cover dataset of the region’s key ecological gradients. The pooled models outperformed models constructed solely with eBird data for predicting fine grain species responses to habitat gradients in intact forest, but also retained information from the citizen science dataset about species occurrence patterns in non-vegetated areas away from intact forest, including those subject to human disturbance. We present this hybrid approach as a flexible and repeatable means to produce inferences that would not easily be achievable using a single data source, and provide recommendations for other researchers seeking to replicate these methods in Amazonia as well as in other tropical regions.
A key goal in ecology is to develop effective ways to understand species' distributions in order to facilitate both their study and conservation. Many species distribution modeling analyses have been performed using either structured survey data or unstructured citizen science data; these two pools of data have tradeoffs in terms of data density, spatiotemporal coverage, and accuracy. Recent studies have shown that combining structured and unstructured survey data can improve the accuracy of species distribution models for birds, but most of this work has focused on north temperate bird species, using bird atlas data that are less available in the Tropics. Here, we adapted a data pooling approach from the literature on north temperate bird biology to create distribution models for a selection of secretive suboscine bird species that occur in a highly diverse region of the southwestern Amazon. Our approach combined automated acoustic monitoring detections and eBird citizen science data available for the region as well as a high resolution land cover dataset of the region's key ecological gradients. The pooled models outperformed models constructed solely with eBird data for predicting fine grain species responses to habitat gradients in intact forest, but also retained information from the citizen science dataset about species occurrence patterns in non-vegetated areas away from intact forest, including those subject to human disturbance. We present this hybrid approach as a flexible and repeatable means to produce inferences that would not easily be achievable using a single data source, and provide recommendations for other researchers seeking to replicate these methods in Amazonia as well as in other tropical regions.A key goal in ecology is to develop effective ways to understand species' distributions in order to facilitate both their study and conservation. Many species distribution modeling analyses have been performed using either structured survey data or unstructured citizen science data; these two pools of data have tradeoffs in terms of data density, spatiotemporal coverage, and accuracy. Recent studies have shown that combining structured and unstructured survey data can improve the accuracy of species distribution models for birds, but most of this work has focused on north temperate bird species, using bird atlas data that are less available in the Tropics. Here, we adapted a data pooling approach from the literature on north temperate bird biology to create distribution models for a selection of secretive suboscine bird species that occur in a highly diverse region of the southwestern Amazon. Our approach combined automated acoustic monitoring detections and eBird citizen science data available for the region as well as a high resolution land cover dataset of the region's key ecological gradients. The pooled models outperformed models constructed solely with eBird data for predicting fine grain species responses to habitat gradients in intact forest, but also retained information from the citizen science dataset about species occurrence patterns in non-vegetated areas away from intact forest, including those subject to human disturbance. We present this hybrid approach as a flexible and repeatable means to produce inferences that would not easily be achievable using a single data source, and provide recommendations for other researchers seeking to replicate these methods in Amazonia as well as in other tropical regions.
Audience Academic
Author Basto, Arianna
Buřivalová, Zuzana
Searcy, Christopher
Mere Roncal, Carla
Rumelt, Reid
AuthorAffiliation 1 Department of Biology, University of Miami, Coral Gables, Florida, United States of America
2 New Venture Fund, Washington, DC, United States of America
Oregon State University, UNITED STATES OF AMERICA
3 The Nelson Institute for Environmental Studies and the Department of Forest and Wildlife Ecology, University of Wisconsin-Madison, Madison, Wisconsin, United States of America
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Snippet A key goal in ecology is to develop effective ways to understand species' distributions in order to facilitate both their study and conservation. Many species...
A key goal in ecology is to develop effective ways to understand species’ distributions in order to facilitate both their study and conservation. Many species...
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SubjectTerms Accuracy
Acoustic tracking
Acoustics
Animal Distribution
Animals
Automation
Biological monitoring
Biology and Life Sciences
Birds
Birds - physiology
Citizen Science
Citizen scientists
Conservation of Natural Resources
Datasets
Deforestation
Distribution
Earth Sciences
Ecology and Environmental Sciences
Ecosystem
Ecosystem biology
Ecosystems
Forests
Geographical distribution
Habitats
Human impact
Influence
Land cover
Land use
Methods
Physical Sciences
Rain forest fauna
Rainforest
Rainforests
Science
Science Policy
Species
Surveys
Tropical Climate
Tropical environment
Tropical environments
Unstructured data
Varieties
Vegetation
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Title Combining acoustic survey and citizen science data yields enhanced species distribution models for tropical rainforest birds
URI https://www.ncbi.nlm.nih.gov/pubmed/40627641
https://www.proquest.com/docview/3228428126
https://www.proquest.com/docview/3228522204
https://pubmed.ncbi.nlm.nih.gov/PMC12237072
https://doaj.org/article/19e53110d3874e2786d967cadf4f930c
http://dx.doi.org/10.1371/journal.pone.0327944
Volume 20
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