Harashima, Sensor based robot control system, 1990, IEEE, pp. 203-208.* |
Ho et al. Architecture and implementation of a multisensor system for robotic assembly envirnment, 1996, IEEE, pp. 513-518.* |
Lauria et al., Converting natural language route instructions inot robot executable procedures, 2002, IEEE, pp. 223-228.* |
Zhang et al., Control architecture and experiment of a situated robot system for interactive assembly, 2002, IEEE, pp. 3906-3911.* |
Albus, J.S., “Outline for a Theory of Intelligence”, IEEE Trans. Syst. Man, and Cybern., vol. 21: No. 3 (1991). |
Mataric and Brooks, “Learning a Distributed Map Representation Based on Navigation Behaviors,” in Cambrian Intelligence: the early history of the new A1, The MIT Press, 1999. |
Cambron, M.E., and Peters II, R.A., “Determination of Sensory Motor Coordination Parameters for a Robot Via Teleoperation”, Ptroceedings of the 2000 IEEE International Conference on Systems, Man and Cybernetics, Tucson, AZ, Oct. 2001, available at http://www.vuse.vanderbilt.edu/˜rap2/papers/smc2001-mec-rap2-20010723.pdf. |
Peters, R.A. II, K. Kawamura, D.M. Wilkes, K.E. Hambuchen, T.E. Rogers, and A. Alford “ISAC Humanoid: An Architecture for Learning and Emotion,” Proceedings of the IEEE-RAS International. Conference on Humanoid Robots, pp. 451-459, Waseda University, Tokyo, Japan, Nov. 22-24, 2001, available at http://www.vuse.vanderbilt.edu/˜rap2/papers/Humanoids2001-ISAC.pdf. |
Pfeifer, R. and C. Scheier, “Sensory-motor coordination: the metaphor and beyond,” Robotics and Autonomous Systems, Special Issue on “Pactice and Future of Autonomous Agents,” vol. 20, No. 2-4 pp. 157-178, 1997, available at ftp://ftp.ifi.unizh.ch/pub/institute/ailab/techreports/96.10.ps.gz. |
Cohen, Paul R., Niall Adams and David Hand, “Finding Patterns that Correspond to Episodes,” University of Massachusetts Computer Science Department Technical Report 01-11, 2001, available at http://www.eksl.cs.umass.edu/papers/cohen13ijcai01a.pds. |
Peters, R.A. II, K.E. Hambuchen, K. Kawamura, and D.M. Wilkes, “The Sensory Ego-Sphere as a Short-Term Memory for Humanoids”, Proc. IEEE-RAS Int'l. Conf. on Humanoid Robotys, pp. 451-459, Waseda University, Tokyo, Japan, Nov. 22-24, 2001, available at http://www.vuse.vanderbilt.edu/˜rap2/papers/Humanoids2001-SES.pdf. |
Mataric, Maja J., “A Distributed Model for Mobile Robot Environment-Learning and Navigation,” Technical Report 1228, MIT Artificial Intelligence Laboratory. |
Peters, Richard Alan, et al., Robot Learning and Problem Solving through Teleoperation with Application to Human-Robot Teaming, Robert Learning White Paper, Nov. 29, 2000, pp. 1-9. |
Kawamura, K. et al., Towards a Unified Framework for Human-Humanoid Interaction, Center for Intelligent Systems, Vanderbilt Univ. TN. |
Kawamura, K., et al., ISAC: Foundations in Human-Humanoid Interaction, IEEE Intelligent Systems, Jul./Aug. 2000. |
Bagchi, Sugato, et al., Interactive Task Planning Under Uncertainty and Goal Changes, Robotics and Autonomous Systems 18:157-167 (1996). |
Albus, James S., Outline for a Theory of Intelligence, Cybernetics, No. 3, pp. 473-509 (May/Jun., 1991). |
Tieche, F., et al., A Behaviour-Based Architecture to Control an Autonomous Mobile Robot; Inst. of Microtechnology. |
Hexmoor, Henry, et al., An Autonomous Agent Architecture for Integrating Perception and Acting with Grounded, Embodied Symbolic Reasoning; Computer Science Dept. State Univ. of NY at Buffalo, Sep. 9, 1992. |
Goodrich, et al., Brake Initiation and Braking Dynamics: A Human-Centered Study of Desired ACC Characteristics; Cambridge Basic Res. (Dec. 1, 1998). |