2022
DOI: 10.1101/2022.12.28.522027
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A versatile semiautomated image analysis workflow for time-lapsed camera trap image classification

Abstract: 1. Camera trap arrays can generate thousands to millions of images that require exorbitant time and effort to classify and annotate by trained observers. Computer vision has evolved as an automated alternative to manual classification. The most popular computer vision solution is the supervised Machine Learning technique, which uses labeled images to train automated classification algorithms. 2. We propose a multi-step semi-automated workflow that consists of (1) identifying and separating bad- from good-quali… Show more

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