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An Interaction-process-guided Framework for Small-group Performance Prediction

delete2023-02-06
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PRE
AI
Y
Yun-Shao Lin *
Y
Yi‐Ching Liu
C
Chi-Chun Lee
DOI:10.1145/3558768delete
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摘要

摘要

En 中文
A small group is a fundamental interaction unit for achieving a shared goal. Group performance can be automatically predicted using computational methods to analyze members' verbal behavior in task-oriented interactions, as has been proven in several recent works. Most of the prior works focus on lower-level verbal behaviors, such as acoustics and turn-taking patterns, using either hand-crafted features or even advanced end-to-end methods. However, higher-level group-based communicative functions used between groupmembers during conversations have not yet been considered. In this work, we propose a two-stage training framework that effectively integrates the communication function, as defined using Bales's interaction process analysis (IPA) coding system, with the embedding learned from the low-level features in order to improve the group performance prediction. Our result shows a significant improvement compared to the state-of-the-art methods (4.241 MSE and 0.341 Pearson's correlation on NTUBA-task1 and 3.794 MSE and 0.291 Pearson's correlation on NTUBA-task2) on the National Taiwan University Business Administration (NTUBA) small-group interaction database. Furthermore, based on the design of IPA, our computational framework can provide a time-grained analysis of the group communication process and interpret the beneficial communicative behaviors for achieving better group performance.
Keyword:
Small group interaction
Supervised Auto-encoder
communicative functions
multimodal behaviors

期刊

ACM Transactions on Multimedia Computing Communications and Applications 封面图
ACM Transactions on Multimedia Computing Communications and Applications
IF:
6
论文数:
2.0K
被引数:
5.4K

机构

N
National Tsing Hua University
学者数:
1.6W
论文数: 1.4W
被引数: 1.7W
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