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Biologically-Inspired Continual Learning of Human Motion Sequences

Ott, Joachim; Liu, Shih-Chii (2023). Biologically-Inspired Continual Learning of Human Motion Sequences. In: ICASSP 2023 - 2023 IEEE International Conference on Acoustics, Speech and Signal Processing (ICASSP), Rhodes Island, Greece, 4 June 2023 - 10 June 2023. Institute of Electrical and Electronics Engineers, online.

Abstract

This work proposes a model for continual learning on tasks involving temporal sequences, specifically, human motions. It improves on a recently proposed brain-inspired replay model (BI-R) by building a biologically-inspired conditional temporal variational autoencoder (BI-CTVAE), which instantiates a latent mixture-of-Gaussians for class representation. We investigate a novel continual-learning-to-generate (CL2Gen) scenario where the model generates motion sequences of different classes. The generative accuracy of the model is tested over a set of tasks. The final classification accuracy of BI-CTVAE on a human motion dataset after sequentially learning all action classes is 78%, which is 63% higher than using no-replay, and only 5.4% lower than a state-of-the-art offline trained GRU model.

Additional indexing

Item Type:Conference or Workshop Item (Paper), refereed, original work
Communities & Collections:07 Faculty of Science > Institute of Neuroinformatics
Dewey Decimal Classification:570 Life sciences; biology
Scopus Subject Areas:Physical Sciences > Software
Physical Sciences > Signal Processing
Physical Sciences > Electrical and Electronic Engineering
Language:English
Event End Date:10 June 2023
Deposited On:02 Feb 2024 12:47
Last Modified:21 Jan 2025 13:15
Publisher:Institute of Electrical and Electronics Engineers
Series Name:Proceedings of the IEEE International Conference on Acoustics, Speech and Signal Processing
ISSN:1520-6149
ISBN:978-1-7281-6327-7
OA Status:Green
Publisher DOI:https://doi.org/10.1109/icassp49357.2023.10095490
Project Information:
  • Funder: National Science Foundation
  • Grant ID:
  • Project Title:
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