Visual Robotic Perception System with Incremental Learning for Child–Robot Interaction Scenarios

Author:

Efthymiou NikiORCID,Filntisis Panagiotis Paraskevas,Potamianos Gerasimos,Maragos Petros

Abstract

This paper proposes a novel lightweight visual perception system with Incremental Learning (IL), tailored to child–robot interaction scenarios. Specifically, this encompasses both an action and emotion recognition module, with the former wrapped around an IL system, allowing novel actions to be easily added. This IL system enables the tutor aspiring to use robotic agents in interaction scenarios to further customize the system according to children’s needs. We perform extensive evaluations of the developed modules, achieving state-of-the-art results on both the children’s action BabyRobot dataset and the children’s emotion EmoReact dataset. Finally, we demonstrate the robustness and effectiveness of the IL system for action recognition by conducting a thorough experimental analysis for various conditions and parameters.

Funder

Greece and the European Union

Publisher

MDPI AG

Cited by 4 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. NAC-TCN: Temporal Convolutional Networks with Causal Dilated Neighborhood Attention for Emotion Understanding;Proceedings of the 2023 7th International Conference on Video and Image Processing;2023-12-14

2. Enhancing Action Recognition in Vehicle Environments With Human Pose Information;Proceedings of the 16th International Conference on PErvasive Technologies Related to Assistive Environments;2023-07-05

3. Important Preliminary Insights for Designing Successful Communication between a Robotic Learning Assistant and Children with Autism Spectrum Disorder in Germany;Robotics;2022-12-04

4. Attribute-based Gesture Recognition: Generalization to Unseen Classes;2022 IEEE 14th Image, Video, and Multidimensional Signal Processing Workshop (IVMSP);2022-06-26

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