• DocumentCode
    3035924
  • Title

    Humanoid robot control based on reinforcement learning

  • Author

    Iida, Shingo ; Kato, Shohei ; Kuwayama, Kiyatake ; Kunitachi, Tsutomu ; Kanoh, Masayoshi ; Itoh, Hidenor

  • Author_Institution
    Dept. of Intelligence & Comput. Sci., Nagoya Inst. of Technol., Japan
  • fYear
    2004
  • fDate
    31 Oct.-3 Nov. 2004
  • Firstpage
    353
  • Lastpage
    358
  • Abstract
    Many existing methods of reinforcement learning have treated tasks in a discrete low dimensional state space. However, controlling humanoid robots smooth requires a continuous high-dimensional state space. In this paper, to treat the state space, we proposed an adaptive allocation method of basis functions for reinforcement learning. Up to now, grid or incremental allocation method have been proposed for allocation of basis functions. However, these methods may cause the curse of dimensionality, and fall into local minima. On the other hand, our method avoids local minima which are assessed by the trace of activity of basis functions. That is, if current state is judged to fall into a local minimum, our method eliminates a basis function which affects the state most. Moreover our method learns with a low number of basis functions because of the elimination process. To confirm the effectiveness of our method, we used a maze task to compare our method with an existing method, which has only an allocation process. Moreover, as learning of continuous high-dimensional state spaces, our method was applied to motion control of a humanoid robot. We demonstrate that our method is capable of providing better performance than the existing method.
  • Keywords
    humanoid robots; learning (artificial intelligence); motion control; basis functions; continuous high-dimensional state spaces; discrete low dimensional state space; grid allocation method; humanoid robot control; incremental allocation method; motion control; reinforcement learning; Computer science; Humanoid robots; Humans; Intelligent robots; Learning; Orbital robotics; Robot control; Service robots; Space technology; State-space methods;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Micro-Nanomechatronics and Human Science, 2004 and The Fourth Symposium Micro-Nanomechatronics for Information-Based Society, 2004. Proceedings of the 2004 International Symposium on
  • Print_ISBN
    0-7803-8607-8
  • Type

    conf

  • DOI
    10.1109/MHS.2004.1421274
  • Filename
    1421274