Listening to lions : animal-borne acoustic sensors improve bio-logger calibration and behaviour classification performance

dc.contributor.authorWijers, Matthew
dc.contributor.authorTrethowan, Paul
dc.contributor.authorMarkham, Andrew
dc.contributor.authorDu Preez, Byron
dc.contributor.authorChamaillé-Jammes, Simon
dc.contributor.authorLoveridge, Andrew
dc.contributor.authorMacdonald, David
dc.date.accessioned2019-01-24T05:31:47Z
dc.date.available2019-01-24T05:31:47Z
dc.date.issued2018-10-29
dc.descriptionAudio 1 | Eating.en_ZA
dc.descriptionAudio 2 | Drinking.en_ZA
dc.descriptionAudio 3 | Fast.en_ZA
dc.descriptionAudio 4 | Slow.en_ZA
dc.descriptionAudio 5 | Stationary.en_ZA
dc.description.abstractEfforts to better understand patterns of animal behaviour have often been restricted by several environmental, human and experimental limitations associated with the collection of animal behavioural data. The introduction of new bio-logging technology has offered an alternative means of recording animal behaviour continuously and is being used in an increasing number of studies. Accurately calibrating these bio-loggers, however, still remains a challenge in many cases. Using lions as an example species, we test how audio recordings from animal-borne acoustic sensors can improve calibration and behaviour classification. Through a collaborative effort between computer scientists, engineers, and zoologists, custom designed acoustic bio-loggers were fitted to eight lions and recorded audio simultaneously with accelerometer and magnetometer data. Audio recordings were then used as the source of ground truth to train random forest classification models as well as to provide additional predictor variables for behaviour classification. We demonstrated near-perfect classification performance for five lion behaviour classes when all component variables were combined, with an average per- class precision of 98.5%. Using accelerometer features only, the audio-trained classifier predicted behaviours with an average per-class precision of 94.3%. On-animal audio recordings are therefore able to provide a valuable source of ground-truth for calibrating bio-loggers while also offering additional predictive features for increasing the accuracy of behaviour classification. This technological innovation has wide ranging application and provides a useful tool for behavioural ecologists wishing to collect fine scale behavioural data for animal research and conservation.en_ZA
dc.description.departmentMammal Research Instituteen_ZA
dc.description.departmentZoology and Entomologyen_ZA
dc.description.librarianam2019en_ZA
dc.description.sponsorshipThe John Fell Fund and the Beit Trust.en_ZA
dc.description.urihttp://www.frontiersin.org/Ecology_and_Evolutionen_ZA
dc.identifier.citationWijers M, Trethowan P, Markham A, du Preez B, Chamaillé-Jammes S, Loveridge A and Macdonald D (2018) Listening to Lions: Animal-Borne Acoustic Sensors Improve Bio-logger Calibration and Behaviour Classification Performance. Front. Ecol. Evol. 6:171.DOI: 10.3389/fevo.2018.00171.en_ZA
dc.identifier.issn2296-701X (online)
dc.identifier.other10.3389/fevo.2018.00171
dc.identifier.urihttp://hdl.handle.net/2263/68221
dc.language.isoenen_ZA
dc.publisherFrontiers Mediaen_ZA
dc.rights© 2018 Wijers, Trethowan, Markham, du Preez, Chamaillé-Jammes, Loveridge andMacdonald. This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY).en_ZA
dc.subjectAcoustic monitoringen_ZA
dc.subjectBehaviour classificationen_ZA
dc.subjectBio-logger calibrationen_ZA
dc.subjectMachine learningen_ZA
dc.subjectRandom foresten_ZA
dc.subjectAfrican lion (Panthera leo)en_ZA
dc.titleListening to lions : animal-borne acoustic sensors improve bio-logger calibration and behaviour classification performanceen_ZA
dc.typeArticleen_ZA

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