Camera Trap Images used in "Identifying Animal Species in Camera Trap Images using Deep Learning and Citizen Science"

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Camera Trap Images used in "Identifying Animal Species in Camera Trap Images using Deep Learning and Citizen Science"

Published Date

2018-08-28

Author Contact

Willi, Marco
will5448@umn.edu

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Dataset
Field Study Data
Observational Data

Abstract

This dataset provides the camera trap images used in "Identifying Animal Species in Camera Trap Images using Deep Learning and Citizen Science" as well as meta-data about the images. The Snapshop Serengeti collection includes 6,163,870 images in JPG format. The Snapshot Wisconsin collection includes 497,204 images in JPG format. The Camera CATalogue collection include 506,241 images in JPG format. Excluded are the images for the dataset "Elephant Expedition" which will be published separately outside DRUM. Also excluded are images of humans due to privacy reasons.

Description

All images were downloaded from Zooniverse and have been resized to 330x330 pixels.

Referenced by

Willi M, Pitman R, Cardoso A, Locke C, Swanson A, Boyer A, Veldthuis M, Fortson L, Identifying Animal Species in Camera Trap Images using Deep Learning and Citizen Science, 2018, submitted to Methods in Ecology and Evolution
https://doi.org/10.1111/2041-210X.13099

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Funding information

This study was partially supported by the NSF under award IIS 1619177
The development of the Zooniverse platform was partially supported by a Global Impact Award from Google.
We also acknowledge support from STFC under grant ST/N003179/1.
EE was funded by the University of Oxford’s Hertford College Mortimer May fund.

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Willi, Marco; Pitman, Ross T; Cardoso, Anabelle W; Locke, Christina; Swanson, Alexandra; Boyer, Amy; Veldthuis, Marten; Fortson, Lucy. (2018). Camera Trap Images used in "Identifying Animal Species in Camera Trap Images using Deep Learning and Citizen Science". Retrieved from the Data Repository for the University of Minnesota (DRUM), https://doi.org/10.13020/D6T11K.

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