Automated video monitoring of insect pollinators in the field

Author:

Pegoraro Luca12ORCID,Hidalgo Oriane13,Leitch Ilia J.1,Pellicer Jaume14,Barlow Sarah E.5

Affiliation:

1. Comparative Plant and Fungal Biology Department, Royal Botanic Gardens, Kew, Richmond, Surrey TW9 3AB, U.K.

2. Organismal Biology Department, Queen Mary University of London, Mile End Road, London E1 4NS, U.K.

3. Laboratori de Botànica, Facultat de Farmàcia i Ciències de L'Alimentació, Universitat de Barcelona, Av Joan XXII 27-31, Barcelona 08028, Spain

4. Departament de Biodiversitat, Institut Botànic de Barcelona (IBB, CSIC – Ajuntament de Barcelona), Passeig del Migdia sn, Barcelona 08038, Spain

5. Red Butte Garden and Arboretum, University of Utah, Salt Lake City, UT 84108, U.S.A.

Abstract

Ecosystems are at increasing risk from the global pollination crisis. Gaining better knowledge about pollinators and their interactions with plants is an urgent need. However, conventional methods of manually recording pollinator activity in the field can be time- and cost-consuming in terms of labour. Field-deployable video recording systems have become more common in ecological studies as they enable the capture of plant-insect interactions in fine detail. Standard video recording can be effective, although there are issues with hardware reliability under field-conditions (e.g. weatherproofing), and reviewing raw video manually is a time-consuming task. Automated video monitoring systems based on motion detection partly overcome these issues by only recording when activity occurs hence reducing the time needed to review footage during post-processing. Another advantage of these systems is that the hardware has relatively low power requirements. A few systems have been tested in the field which permit the collection of large datasets. Compared with other systems, automated monitoring allows vast increases in sampling at broad spatiotemporal scales. Some tools such as post-recording computer vision software and data-import scripts exist, further reducing users’ time spent processing and analysing the data. Integrated computer vision and automated species recognition using machine learning models have great potential to further the study of pollinators in the field. Together, it is predicted that future advances in technology-based field monitoring methods will contribute significantly to understanding the causes underpinning pollinator declines and, hence, developing effective solutions for dealing with this global challenge.

Publisher

Portland Press Ltd.

Subject

General Agricultural and Biological Sciences,General Biochemistry, Genetics and Molecular Biology

Reference47 articles.

1. How many flowering plants are pollinated by animals?;Oikos,2011

2. The assessment report of the intergovernmental science-policy platform on biodiversity and ecosystem services on pollinators, pollination and food production;IPBES,2016

3. Widespread losses of pollinating insects in britain;Nat. Commun.,2019

4. Historical nectar assessment reveals the fall and rise of floral resources in Britain;Nature,2016

5. Safeguarding pollinators and their values to human well-being;Nature,2016

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