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research article

Perspectives in machine learning for wildlife conservation

Tuia, Devis
•
Kellenberger, Benjamin
•
Beery, Sara
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February 9, 2022
Nature Communications

Inexpensive and accessible sensors are accelerating data acquisition in animal ecology. These technologies hold great potential for large-scale ecological understanding, but are limited by current processing approaches which inefficiently distill data into relevant information. We argue that animal ecologists can capitalize on large datasets generated by modern sensors by combining machine learning approaches with domain knowledge. Incorporating machine learning into ecological workflows could improve inputs for ecological models and lead to integrated hybrid modeling tools. This approach will require close interdisciplinary collaboration to ensure the quality of novel approaches and train a new generation of data scientists in ecology and conservation.

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Type
research article
DOI
10.1038/s41467-022-27980-y
Author(s)
Tuia, Devis
Kellenberger, Benjamin
Beery, Sara
Costelloe, Blair R.
Zuffi, Silvia
Risse, Benjamin
Mathis, Alexander  
Mathis, Mackenzie W.  
van Langevelde, Frank
Burghardt, Tilo
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Date Issued

2022-02-09

Publisher

Nature Research

Published in
Nature Communications
Volume

13

Issue

1

Start page

792

Subjects

wildlife conservation

•

machine learning

•

computer vision

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
ECEO  
Available on Infoscience
February 23, 2022
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/185660
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