A dataset for benchmarking Neotropical anuran calls identification in passive acoustic monitoring

被引:0
作者
Juan Sebastián Cañas
María Paula Toro-Gómez
Larissa Sayuri Moreira Sugai
Hernán Darío Benítez Restrepo
Jorge Rudas
Breyner Posso Bautista
Luís Felipe Toledo
Simone Dena
Adão Henrique Rosa Domingos
Franco Leandro de Souza
Selvino Neckel-Oliveira
Anderson da Rosa
Vítor Carvalho-Rocha
José Vinícius Bernardy
José Luiz Massao Moreira Sugai
Carolina Emília dos Santos
Rogério Pereira Bastos
Diego Llusia
Juan Sebastián Ulloa
机构
[1] Instituto de Investigación de Recursos Biológicos Alexander von Humboldt,K Lisa Yang Center for Conservation Bioacoustics, Cornell Lab of Ornithology
[2] Avenida Paseo Bolívar 16-20,Laboratório de História Natural de Anfíbios Brasileiros (LaHNAB)
[3] Cornell University,Museu de Diversidade Biológica (MDBio)
[4] Pontificia Universidad Javeriana Seccional Cali,Instituto de Pesquisa da Biodiversidade (IPBio)
[5] Universidade Estadual de Campinas,Departamento de Ecologia e Zoologia
[6] Universidade Estadual de Campinas,Terrestrial Ecology Group, Departamento de Ecología
[7] Reserva Betary,Centro de Investigación en Biodiversidad y Cambio Global (CIBC)
[8] Universidade Federal de Mato Grosso do Sul,undefined
[9] Instituto de Biociências,undefined
[10] Universidade Federal de Santa Catarina,undefined
[11] Universidade Federal de Goiás,undefined
[12] Universidad Autónoma de Madrid,undefined
[13] C/ Darwin,undefined
[14] 2,undefined
[15] Ciudad Universitaria de Cantoblanco,undefined
[16] Facultad de Ciencias,undefined
[17] Edificio de Biología,undefined
[18] Universidad Autónoma de Madrid. C/ Darwin 2,undefined
[19] Laboratório de Herpetologia e Comportamento Animal,undefined
[20] Departamento de Ecologia,undefined
[21] Instituto de Ciências Biológicas,undefined
[22] Universidade Federal de Goiás,undefined
来源
Scientific Data | / 10卷
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摘要
Global change is predicted to induce shifts in anuran acoustic behavior, which can be studied through passive acoustic monitoring (PAM). Understanding changes in calling behavior requires automatic identification of anuran species, which is challenging due to the particular characteristics of neotropical soundscapes. In this paper, we introduce a large-scale multi-species dataset of anuran amphibians calls recorded by PAM, that comprises 27 hours of expert annotations for 42 different species from two Brazilian biomes. We provide open access to the dataset, including the raw recordings, experimental setup code, and a benchmark with a baseline model of the fine-grained categorization problem. Additionally, we highlight the challenges of the dataset to encourage machine learning researchers to solve the problem of anuran call identification towards conservation policy. All our experiments and resources have been made available at https://soundclim.github.io/anuraweb/.
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