Object detection at the edge
Permanent link
https://hdl.handle.net/10037/20516Date
2020-11-10Type
MastergradsoppgaveMaster thesis
Author
Mathiassen, TrulsAbstract
While monitoring rodents in the Arctic Tundra to evaluate if climate changes
affect the ecosystem. The camera-traps of the coat project generates image
data in large scale each year. To manually examine the data in regards to label-
ing is a tedious and time-consuming job, and a more efficient and automated
tool for the task is required.
In this thesis we presents the architecture, design and implementation of a
object classification model deployed on a small embedded computer, to be used
on the gathered image data in order to classify and label the animals at the
edge.
We conduct transfer-learning on the state-of-the-art pre-trained YOLOv4-tiny
model by introducing a labeled COAT image set. We utilize the Convolutional
Neural Network of the model to do predictions on a test image set in order to
evaluate the model. The result is an application with an embedded model able
to predict labels with an accuracy of 96.07% and inference time that classifies
it to do so in real-time.
Publisher
UiT Norges arktiske universitetUiT The Arctic University of Norway
Metadata
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Copyright 2020 The Author(s)
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Except where otherwise noted, this item's license is described as Attribution-NonCommercial-ShareAlike 4.0 International (CC BY-NC-SA 4.0)
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