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MuBeFE: Multimodal Behavioural Features Extraction Method

Academic Article
Publication Date:
2021
abstract:
The paper aims to provide a method to analyse and observe the characteristics that distinguish the individual communication style such as the voice intonation, the size and slant used in handwriting and the trait, pressure and dimension used for sketching. These features are referred to as Communication Extensional Features. Observing from the Communication Extensional Features, the user's behavioural features, such as the communicative intention, the social style and personality traits can be extracted. These behavioural features are referred to as Communication Intentional Features. For the extraction of Communication Intentional Features, a method based on Hidden Markov Models is provided in the paper. The Communication Intentional Features have been extracted at the modal and multimodal level; this represents an important novelty provided by the paper. The accuracy of the method was tested both at modal and multimodal levels. The evaluation process results indicate an accuracy of 93.3% for the Modal layer (handwriting layer) and 95.3% for the Multimodal layer.
Iris type:
01.01 Articolo in rivista
Keywords:
Language; Behavioural communication features; Multimodal communication; Personality traits
List of contributors:
Grifoni, Patrizia; Ferri, Fernando; Caschera, MARIA CHIARA; D'Andrea, Alessia
Authors of the University:
CASCHERA MARIA CHIARA
D'ANDREA ALESSIA
FERRI FERNANDO
GRIFONI PATRIZIA
Handle:
https://iris.cnr.it/handle/20.500.14243/394774
Published in:
JOURNAL OF UNIVERSAL COMPUTER SCIENCE (PRINT)
Journal
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URL

https://lib.jucs.org/article/66375/
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