Evolving a Sensory-Motor Interconnection Structure for Adaptive Biped Robot Locomotion

被引:8
作者
Saputra, Azhar Aulia [1 ]
Botzheim, Janos [2 ]
Kubota, Naoyuki [1 ]
机构
[1] Tokyo Metropolitan Univ, Grad Sch Syst Design, Tokyo 1910065, Japan
[2] Budapest Univ Technol & Econ, Dept Mechatron Opt & Mech Engn Informat, H-1111 Budapest, Hungary
关键词
Bacterial programming (BP); biped robot locomotion; evolving neural oscillator; neural tree structure; CENTRAL PATTERN GENERATORS; EVOLUTION; ADAPTATION; WALKING;
D O I
10.1109/TCDS.2018.2863032
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
We present an evolving neural oscillator-based bio-inspired biped robot locomotion for minimizing the constraints during the locomotion process. Sensory-motor coordination model is represented by the interconnection between motor neurons and sensory neurons. An evolutionary computation technique is applied for reconstructing the number of joints and the number of neurons in each joint depending on the environmental condition. In this system, either the number of joints, or the number of neurons, or the interconnection structure are dynamically changed depending on the conditions acquired from the sensors that equipped in the robot. Bacterial programming is inspired by the evolutionary process of bacteria, including bacterial mutation and gene transfer. This system is applied in computer simulation for realizing the optimization process and the optimized structure is applied in a small humanoid robot. In experiments, we run the robot in several different environmental conditions. Different neuron structures are resulted depending on the environmental conditions. The proposed tree structure-based optimization strategy can simplify the sensory-motor interconnection structure.
引用
收藏
页码:244 / 256
页数:13
相关论文
共 46 条
  • [1] [Anonymous], 2011, P 11 EUROPEAN C SYNT
  • [2] [Anonymous], 1992, ADAPTATION NATURAL A, DOI DOI 10.7551/MITPRESS/1090.001.0001
  • [3] Balazs K., 2010, P IEEE WORLD C COMP, P1866
  • [4] Baydin A.G., 2012, PALADYN, V3, P45, DOI [10.2478/s13230-012-0019-y, DOI 10.2478/S13230-012-0019-Y]
  • [5] Genetic and Bacterial Programming for B-Spline Neural Networks Design
    Botzheim, Janos
    Cabrita, Cristiano
    Koczy, Laszlo T.
    Ruano, Antonio E.
    [J]. JOURNAL OF ADVANCED COMPUTATIONAL INTELLIGENCE AND INTELLIGENT INFORMATICS, 2007, 11 (02) : 220 - 231
  • [6] Chee WS, 2014, 2014 IEEE INTERNATIONAL SYMPOSIUM ON ROBOTICS AND MANUFACTURING AUTOMATION (ROMA), P236, DOI 10.1109/ROMA.2014.7295894
  • [7] Flexible Muscle-Based Locomotion for Bipedal Creatures
    Geijtenbeek, Thomas
    van de Panne, Michiel
    van der Stappen, A. Frank
    [J]. ACM TRANSACTIONS ON GRAPHICS, 2013, 32 (06):
  • [8] Evolution of Artificial Muscle-Based Robotic Locomotion in PhysX
    Glette, Kyrre
    Hovin, Mats
    [J]. IEEE/RSJ 2010 INTERNATIONAL CONFERENCE ON INTELLIGENT ROBOTS AND SYSTEMS (IROS 2010), 2010, : 1114 - 1119
  • [9] Gait transition from swimming to walking: Investigation of salamander locomotion control using nonlinear oscillators
    Ijspeert, AJ
    Cabelguen, JM
    [J]. ADAPTIVE MOTION OF ANIMALS AND MACHINES, 2006, : 177 - +
  • [10] A connectionist central pattern generator for the aquatic and terrestrial gaits of a simulated salamander
    Ijspeert, AJ
    [J]. BIOLOGICAL CYBERNETICS, 2001, 84 (05) : 331 - 348