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Emotional boundaries for choosing modalities according to the intensity of emotion in a linear affect-expression space.

, , , , and . RO-MAN, page 225-230. IEEE, (2008)

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Emotion Interaction System for a Service Robot., , , , , , , , , and 7 other author(s). RO-MAN, page 351-356. IEEE, (2007)A Linear Dynamic Affect-Expression Model: Facial Expressions According to Perceived Emotions in Mascot-Type Facial Robots., , , and . RO-MAN, page 619-624. IEEE, (2007)Expanded linear dynamic affect-expression model for lingering emotional expression in social robot., , , , and . Intell. Serv. Robotics, 16 (5): 619-631 (November 2023)Generation of Realistic Robot Facial Expressions for Human Robot Interaction., , and . J. Intell. Robotic Syst., 78 (3-4): 443-462 (2015)Development of a Deformable and Flexible Robot for Pain Communication: Field Study of ALH-E in the Hospital., , , , , and . RO-MAN, page 2322-2327. IEEE, (2023)FlipMe: Exploring Tangible Peer-to-Peer Communication in On-Line-Learning., , , , , and . Conference on Designing Interactive Systems (Companion Volume), page 207-212. ACM, (2019)Emotional boundaries for choosing modalities according to the intensity of emotion in a linear affect-expression space., , , , and . RO-MAN, page 225-230. IEEE, (2008)ALH-E: A Deformable and Flexible Robot that provides Tangible Interaction for Pain Communication., , , , and . HRI (Companion), page 833-836. ACM, (2023)Biologically inspired models and hardware for emotive facial expressions., , and . RO-MAN, page 679-685. IEEE, (2005)Development of a Robot-assisted Online Pain Communication System using a Squeezable Tangible User Interface., , , , and . RO-MAN, page 185-191. IEEE, (2022)