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Siamese Neural Networks for Class Activity Detection

2020-05-15 14:03:35
Hang Li, Zhiwei Wang, Jiliang Tang, Wenbiao Ding, Zitao Liu

Abstract

Classroom activity detection (CAD) aims at accurately recognizing speaker roles (either teacher or student) in classrooms. A CAD solution helps teachers get instant feedback on their pedagogical instructions. However, CAD is very challenging because (1) classroom conversations contain many conversational turn-taking overlaps between teachers and students; (2) the CAD model needs to be generalized well enough for different teachers and students; and (3) classroom recordings may be very noisy and low-quality. In this work, we address the above challenges by building a Siamese neural framework to automatically identify teacher and student utterances from classroom recordings. The proposed model is evaluated on real-world educational datasets. The results demonstrate that (1) our approach is superior on the prediction tasks for both online and offline classroom environments; and (2) our framework exhibits robustness and generalization ability on new teachers (i.e., teachers never appear in training data).

Abstract (translated)

URL

https://arxiv.org/abs/2005.07549

PDF

https://arxiv.org/pdf/2005.07549.pdf


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