JSAI2020

Presentation information

Organized Session

Organized Session » OS-18

[2D5-OS-18b] OS-18 (2)

Wed. Jun 10, 2020 3:50 PM - 5:30 PM Room D (jsai2020online-4)

岩澤 有祐(東京大学)、鈴木 雅大(東京大学)、山川 宏(東京大学/全脳アーキテクチャ・イニシアティブ)、松尾 豊(東京大学)

4:50 PM - 5:10 PM

[2D5-OS-18b-04] Learning to acquire integrated representations of language, environment, and action: Understanding unknown linguistic commands by retrofitted word embeddings

〇Minori Toyoda1, Hiroki Mori1, Kanata Suzuki1,2, Yoshihiko Hayashi1, Tetsuya Ogata1,3 (1. Waseda Univ., 2. Fujitsu Laboratories LTD., 3. National Institute of Advanced Industrial Science and Technology)

Keywords:Human-Robot Interaction, representation acquisition, multimodal semantic representation, understanding unknown commands, symbol grounding

We propose a novel neural network model that acquires integrated representation of robotic actions and their linguistic descriptions containing unheard commands. Properly responding to the unheard commands in the living environment is a crucial ability for robots. Existing methods enabled robots to respond to the unheard commands, however few words with similar usage were included in the commands like “fast” and “slowly”. In this paper, we extended the bidirectional translation model of actions and descriptions proposed by Yamada et al. 2018. We appended nonlinear layers that retrofit the description network with pre-trained word embeddings. To train the proposed model, bidirectional translation of robotic actions and their descriptions are imposed. After training, the proposed model could estimate appropriate integrated representations of unheard commands and translate the ac- tions and descriptions bidirectionally. Visualization of the integrated representations shows that the representations are categorized according to the word meaning.

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