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Titel:

Understanding Human Activity with Uncertainty Measure for Novelty in Graph Convolutional Networks

Dokumenttyp:
Zeitschriftenaufsatz
Autor(en):
Hao Xing, Darius Burschka
Abstract:
Understanding human activity is a crucial aspect of developing intelligent robots, particularly in the domain of human-robot collaboration. Nevertheless, existing systems encounter challenges such as over-segmentation, attributed to errors in the up-sampling process of the decoder. In response, we introduce a promising solution: the Temporal Fusion Graph Convolutional Network. This innovative approach aims to rectify the inadequate boundary estimation of individual actions within an activity str...     »
Zeitschriftentitel:
The International Journal of Robotics Research
Jahr:
2024
Volltext / DOI:
doi:https://doi.org/10.1177/02783649241287800
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