著者
山本 賢太 井上 昂治 中村 静 高梨 克也 河原 達也
出版者
一般社団法人 人工知能学会
雑誌
人工知能学会論文誌 (ISSN:13460714)
巻号頁・発行日
vol.33, no.5, pp.C-I37_1-9, 2018-09-01 (Released:2018-09-03)
参考文献数
20

This paper addresses character expression for humanoid robots that play a given social role such as a lab guide or a counselor via spoken dialogue so that the character matches to the social role. While most conventional methods of character expression aim to change the style of utterance texts, this study focuses on dialogue features that may affect the impression of spoken dialogue. Specifically, we use five features: utterance amount, backchannel frequency, backchannel variety, filler frequency, and switching pause length. We adopt three character traits of extroversion, emotional instability, and politeness for a character expression, and investigate the relationship with the dialogue features. A statistical analysis of subjective evaluations shows that the dialogue features except for the backchannel variety are related to either of the traits. By using the subjective evaluation scores on the relevant traits, we can train models to control the dialogue features and behaviors according to the desired character. An experimental evaluation demonstrates the feasibility of character expression with regard to the traits of extroversion and politeness.

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“人間型ロボットのキャラクタ表現のための対話の振る舞い制御モデル” https://t.co/5j3nPwLus0
「人間型ロボットのキャラクター表現のための対話の振る舞い制御モデル」 外交的か情緒が安定しているかカジュアルかと言ったキャラクターの特性を、発話量や相槌やフィラーの多さなどの言語学的特徴で特定しようという研究です。 https://t.co/aMkDeThzqq #論文

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