Analysis and Acoustic Event Classification of Environmental Data Collected in a Citizen Science Project
Altres autors/es
Universitat Ramon Llull. La Salle
Data de publicació
2023-02-19ISSN
1660-4601
Resum
Citizen science can serve as a tool to obtain information about changes in the soundscape. One of the challenges of citizen science projects is the processing of data gathered by the citizens, to obtain conclusions. As part of the project Sons al Balcó, authors aim to study the soundscape in Catalonia during the lockdown due to the COVID-19 pandemic and afterwards and design a tool to automatically detect sound events as a first step to assess the quality of the soundscape. This paper details and compares the acoustic samples of the two collecting campaigns of the Sons al Balcó project. While the 2020 campaign obtained 365 videos, the 2021 campaign obtained 237. Later, a convolutional neural network is trained to automatically detect and classify acoustic events even if they occur simultaneously. Event based macro F1-score tops 50% for both campaigns for the most prevalent noise sources. However, results suggest that not all the categories are equally detected: the percentage of prevalence of an event in the dataset and its foregound-to-background ratio play a decisive role.
Tipus de document
Article
Versió del document
Versió publicada
Llengua
English
Matèries (CDU)
5 - Ciències pures i naturals
531/534 - Mecànica. Vibracions. Acústica
62 - Enginyeria. Tecnologia
Paraules clau
Citizen science
Acoustic event detection
Noise annoyance
Convolutional neural networks
Ciència ciutadana
Detecció d'esdeveniments acústics
Molèstia per sorolls
Xarxes neuronals convolucionals
Pàgines
23 p.
Publicat per
MDPI : Molecular Diversity Preservation International
Publicat a
International Journal of Environmental Research and Public Health
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Drets
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