人工知能学会第二種研究会資料
Online ISSN : 2436-5556
2017 巻, AGI-006 号
第6回汎用人工知能研究会
選択された号の論文の11件中1~11を表示しています
  • 大澤 正彦, 川崎 邦将, 八木 拓真, 長田 茂美, 今井 倫太
    原稿種別: 研究会資料
    2017 年 2017 巻 AGI-006 号 p. 01-
    発行日: 2017/09/14
    公開日: 2021/09/16
    研究報告書・技術報告書 フリー

    We propose to use anthropomorphic characters with limited cognitive ability as a milestone of Artificial General Intelligence (AGI) research. We think " Minidora ", a character who appears in the anime " Doraemon " is suitable as our current challenge. Though Minidora cannot speak natural language, we assume Minidora share our mental model. Since its character requires human assistance, researches based on its characteristics are desirable from both technical possibility and social value. In this paper, we will illustrate several examples of cognitive ability Minidora holds, then show the relationship between existing researches, respectively. Especially, we focus on Minidora as a platform of new direction in Human-Agent Interaction and Pattern Recognition researches.

  • 川﨑 邦将, 大澤 正彦, 今井 倫太, 長田 茂美
    原稿種別: 研究会資料
    2017 年 2017 巻 AGI-006 号 p. 02-
    発行日: 2017/09/14
    公開日: 2021/09/16
    研究報告書・技術報告書 フリー

    We propose to use anthropomorphic characters with limited cognitive ability as a milestone of Artificial General Intelligence (AGI) research. We believe, small robot capable of nonverbal expression using movement of arm, facial expression and move around are effective to achieve this milestones. In this paper, we discuss the design of small communication robot can perform nonverbal expression, and report the hardware design and development status.

  • 清丸 寛一, 大澤 正彦, 今井 倫太
    原稿種別: 研究会資料
    2017 年 2017 巻 AGI-006 号 p. 03-
    発行日: 2017/09/14
    公開日: 2021/09/16
    研究報告書・技術報告書 フリー

    We communicate naturally by predictively recognizing utterance based on situation, context, and knowledges. We think that predictive recognition makes robots without ability to speak natural language possible to do linguistic communication. In this paper, we focus on Shiritori, a word game, as a simple linguistic communication to verify the hypothesis. Shiritori restricts players' utterance because of the rules, and also has several typical reply patterns. Therefore, we can easily predict partner's utterances compared with normal conversations. In order to reply predictable words, we construct kindergartener-level vocabulary. Furthermore, we make audio data with the cooperation of voice actors for the rich expression of the words. Experimental result implied that we can play Shiritori even if a player does not speak natural language.

  • 太田 博三
    原稿種別: 研究会資料
    2017 年 2017 巻 AGI-006 号 p. 04-
    発行日: 2017/09/14
    公開日: 2021/09/16
    研究報告書・技術報告書 フリー

    Recent developments in deep learning have been remarkable, from the field of image processing to the field of speech recognition and natural language processing has been penetrated and developed. In this study, we first picked up the following three main approaches to implement sentence generation. 1) Markov chain, 2) automatic summary, 3) sentence generation by deep learning (RNN / LSTM / GAN). As a subject, it was commonly seen that the connection between sentence and sentence was unnatural. We tried the connection between natural sentences and sentences which are also applicable in practice by the above three methods and considered countermeasures.

  • 相澤 彰子
    原稿種別: 研究会資料
    2017 年 2017 巻 AGI-006 号 p. 05-
    発行日: 2017/09/14
    公開日: 2021/09/16
    研究報告書・技術報告書 フリー

    近年の深層学習の発展と普及を受けて、エージェントと環境の相互作用に基づく強化学習(reinforcement learning)が脚光を浴びている。本講演では、Marcus Hutterによって提案された汎用的なエージェントのモデルであるAIXI(AI ξ, エーアイ,クシー)を紹介する。AIXIモデルは、Ray Solomonoffのアルゴリズム情報理論の考え方に基づき、ユニバーサルな事前分布をエージェントの最適化戦略に取り入れたものである。これによりAIXIは、いかなる環境のもとでも最適な戦略をとることができるエージェントモデルとして定式化される。万能エージェントの理論的な枠組みを提示することで、汎用的な知能とは何かの問題にアプローチするAIXIモデルは、強化学習の深化を考える上でも興味深い。

  • 宮部 賢志
    原稿種別: 研究会資料
    2017 年 2017 巻 AGI-006 号 p. 06-
    発行日: 2017/09/14
    公開日: 2021/09/16
    研究報告書・技術報告書 フリー

    We give an introduction of Solomonoff's universal induction, or algorithmic probability. The existence of universal prior (or computability) is the key of his result, which explains many aspects in artificial intelligence and philosophy of science. This introduction especially focuses on Solomonoff's view of probability.

  • 福地 庸介, 大澤 正彦, 山川 宏, 今井 倫太
    原稿種別: 研究会資料
    2017 年 2017 巻 AGI-006 号 p. 07-
    発行日: 2017/09/14
    公開日: 2021/09/16
    研究報告書・技術報告書 フリー

    Under large state and action spaces, it is difficult for a reinforcement learning agent to learn the agent's policy within a practical time. Previous studies have proposed methods in which a trainer gives better actions to a trainee to promote the learning. However, when action spaces of a trainer and a trainee is not the same, the instruction does not work without mapping from the instruction to the trainee's variable space. In this paper, we deal with three types of instruction: action-based expression, abstract expression from a human trainer, and expression output by Instruction-based Behavior Explanation, which is a framework to announce a reinforcement learning agent's future behavior. The three instructions were mapped to agents' action spaces with deep reinforcement learning, and we compared the mappings to consider the form of information towards heterogeneous agents' instruction.

  • 奥岡 耕平, 大澤 正彦, 滝本 佑介, 今井 倫太
    原稿種別: 研究会資料
    2017 年 2017 巻 AGI-006 号 p. 08-
    発行日: 2017/09/14
    公開日: 2021/09/16
    研究報告書・技術報告書 フリー

    Semi-autonomous telepresence robots are proposed by some researches. However, it is insufficient that guidelines defining which behavior should be autonomized on telepresence robots. In our previous research, we proposed a guideline of autonomization focusing on voluntary behavior and involuntary behavior. We extended the architecture focusing on those two behaviors for a telepresence robot and evaluated the impression. However, an evaluation from the viewpoint of remote operator is insufficient. In this paper, we investigated the influence through experiments that participants remotely attend meetings with the telepresence robot. From the results, it was suggested that autonomization of voluntary behaviors could be a factor of unpleasantness for remote operator.

  • 疋田 聡
    原稿種別: 研究会資料
    2017 年 2017 巻 AGI-006 号 p. 09-
    発行日: 2017/09/14
    公開日: 2021/09/16
    研究報告書・技術報告書 フリー

    In recent years, reinforcement learning motivated by curiosity has attracted attention. By learning features related to agents' behavior, they can focus on changes in things that are interesting from images, without being distracted by screen noise or meaningless changes. In addition, it has been reported that even with the learning result based only on the internal compensation, it has the generalization ability to be effective even at the stage other than the stage used for learning. However, in the reference paper, it was only applied to 2 stages in the "Super Mario Bros." Therefore, to further investigate the generalization ability of reinforcement learning motivated by curiosity, I experimented on more stages. As a result, I confirmed the generalization ability of reinforcement learning motivated by curiosity.

  • 高橋 良暢, 佐藤 聖也, 栗原 聡, 山川 宏
    原稿種別: 研究会資料
    2017 年 2017 巻 AGI-006 号 p. 10-
    発行日: 2017/09/14
    公開日: 2021/09/16
    研究報告書・技術報告書 フリー

    等価性構造抽出技術は,属性が特定されない多数の系列に対し,その一部の「系列の組」を系列間の関係とみなし,等価と見なしうる系列の組を発見する技術である.たとえば同一もしくは異なる時系列データから,必ずしも同時でない時刻(非同期)に共通した部分系列を含む系列の組を発見する.そこで本稿では,異なりつつも共通部分を含むデータにもとづいて教師あり学習を行った二つの多層パーセプトロン(MLP)について,その隠れ層に含まれる共通部分を抽出するた めの準備をすすめた.等価性構造を抽出しうる二つのデータ内に共通する振る舞いが含まれることを確認し,その上で等価性構造抽出技術を適用すれば,等価性構造が得られうることを示す.

  • 石見 誠一, 門岡 孝治, 武藤 健司, 下村 拓滋, 桑波田 温士, 樋口 未来生
    原稿種別: 研究会資料
    2017 年 2017 巻 AGI-006 号 p. 11-
    発行日: 2017/09/14
    公開日: 2021/09/16
    研究報告書・技術報告書 フリー

    Currently in research and development, the most important key technology is general artificial intelligence (AGI). If Japan would succeed in development, we will accomplish the Fourth Industrial Revolution and realize a major breakthrough in productivity. However, even in the private sector, the scientists and academic societies, this most important factual relationship is still hardly understood among themselves. It is necessary promptly raise awareness and consciousness. For reforming in the private sector is necessary. To solve this problem, we believe our private volunteers that offers the research and development platform "AGI R&D DAO(Decentralized Autonomous Organization)"applying block chains of completely new ideas would be the most effective. In addition, we will promote the project to make manga characters "Doraemon" who everyone knows, and the educational business to educate AGI. Through these three projects, we will select and support the most effective research activities so that AGI can succeed in development at the shortest and efficient manner.

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