Co-Located Human–Human Interaction Analysis Using Nonverbal Cues: A Survey

非语言交际 计算机科学 社会关系 人工智能 人机交互 优势(遗传学) 认知心理学 数据科学 心理学 社会心理学 沟通 生物化学 基因 化学
作者
Cigdem Beyan,Alessandro Vinciarelli,Alessio Del Bue
出处
期刊:ACM Computing Surveys [Association for Computing Machinery]
卷期号:56 (5): 1-41 被引量:6
标识
DOI:10.1145/3626516
摘要

Automated co-located human-human interaction analysis has been addressed by the use of nonverbal communication as measurable evidence of social and psychological phenomena. We survey the computing studies (since 2010) detecting phenomena related to social traits (e.g., leadership, dominance, personality traits), social roles/relations, and interaction dynamics (e.g., group cohesion, engagement, rapport). Our target is to identify the nonverbal cues and computational methodologies resulting in effective performance. This survey differs from its counterparts by involving the widest spectrum of social phenomena and interaction settings (free-standing conversations, meetings, dyads, and crowds). We also present a comprehensive summary of the related datasets and outline future research directions which are regarding the implementation of artificial intelligence, dataset curation, and privacy-preserving interaction analysis. Some major observations are: the most often used nonverbal cue, computational method, interaction environment, and sensing approach are speaking activity, support vector machines, and meetings composed of 3-4 persons equipped with microphones and cameras, respectively; multimodal features are prominently performing better; deep learning architectures showed improved performance in overall, but there exist many phenomena whose detection has never been implemented through deep models. We also identified several limitations such as the lack of scalable benchmarks, annotation reliability tests, cross-dataset experiments, and explainability analysis.

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