• DocumentCode
    2642579
  • Title

    Adaptive amoeboid locomotion that exploits law of conservation of protoplasmic mass

  • Author

    Umedachi, Takuya ; Ishiguro, Akio

  • Author_Institution
    Tohoku Univ., Sendai
  • fYear
    2007
  • fDate
    17-20 Sept. 2007
  • Firstpage
    2150
  • Lastpage
    2154
  • Abstract
    This paper intensively discusses how adaptive locomotion under unstructured and dynamically changing environment can be realized from the perspective of long-distance interaction and local interaction dynamics induced in bodies. To this end, we have focused on the most primitive yet flexible locomotion, amoeboid locomotion. Slime mold and amoeba are well known to exhibit remarkably adaptive behaviors, such as avoiding hazardous condition, and approaching nutrients and humidity, by dynamically changing their morphology. These behaviors induced so-called amoeboid movement, which is driven by the flexible epitheca (i.e. outer skin) and the protoplasm despite of the absence of a central nervous system or specialized organs. In light of these facts, we have conducted simulations of an amoeboid robot, particularly focusing on epitheca consisting of "real-time tunable springs" and "law of conservation of protoplasmic mass", the former of which is used to deal with "local interaction dynamics" and the latter of which is used to deal with "long-distance interaction". Simulation results indicate that the proposed model can induce highly adaptive locomotion according to the situation encountered by dynamically changing its morphology.
  • Keywords
    adaptive control; medical robotics; microorganisms; adaptive amoeboid locomotion; amoeboid robot; brain-body interaction; epitheca; law of conservation; local interaction dynamics; long-distance interaction; protoplasmic mass; real-time tunable springs; slime mold; Adaptive control; Central nervous system; Control systems; Humidity; Mechanical systems; Morphology; Programmable control; Real time systems; Robots; Springs; Amoeboid locomotion; Brain-body interaction; Law of conservation of protoplasmic mass; Real-time tunable spring; Well-balanced coupling between control and mechanical systems;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    SICE, 2007 Annual Conference
  • Conference_Location
    Takamatsu
  • Print_ISBN
    978-4-907764-27-2
  • Electronic_ISBN
    978-4-907764-27-2
  • Type

    conf

  • DOI
    10.1109/SICE.2007.4421343
  • Filename
    4421343