2021
DOI: 10.3390/dj9080094
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Evaluating Classification Consistency of Oral Lesion Images for Use in an Image Classification Teaching Tool

Abstract: A web-based image classification tool (DiLearn) was developed to facilitate active learning in the oral health profession. Students engage with oral lesion images using swipe gestures to classify each image into pre-determined categories (e.g., left for refer and right for no intervention). To assemble the training modules and to provide feedback to students, DiLearn requires each oral lesion image to be classified, with various features displayed in the image. The collection of accurate meta-information is a … Show more

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