References
- Michael O. Said, "Theory and Practice of Total Ship Survivability for Ship Design", Naval Engineers Journal, Volume 107, Issue 4, pp.191-203, 1995. https://doi.org/10.1111/j.1559-3584.1995.tb03085.x
- CONDAT GSS, http://www.condat-scheyern.de/
- Jennings N. R., Sycara K. and Wooldridge M., "A Roadmap of Agent Research and Development", Autonomous Agents and Multi-Agent Systems 1, pp.7-38. 1998. https://doi.org/10.1023/A:1010090405266
- Bernard P. Zeigler, T.G. Kim, and H. Praehofer, Theory of Modeling and Simulation, 2nd Ed., Academic Press, Inc., 2000.
- B.P. Zeigler, Object-oriented Simulation with Hierarchical Modular Models: Intelligent Agent and Endomorphic Systems, Academic Press, 1990.
- Bernard P. Zeigler, "High Autonomy System: Concept and Models", AI, Simulaton and Planning in High Autonomy Systems, IEEE, 1990.
- Bernard P. Zeigler, S. D. Chi et al, "Model-based Architecture Concepts for Autonomous System Design and Simulation", Introduction to Intelligent and Autonomous Control, Kluwer, 1992.
- Bernard P. Zeigler and S. D. Chi, "DEVS-based Intelligent Control: Space-adapted Mixing System Example",Cybernetics and Systems: An International Journal, vol. 25, no. 3, pp. 471-510, 1994. https://doi.org/10.1080/01969729408902339
- Chi S. D. and Bernard P. Zeigler, "Hierarchical Model-based Designs for High Autonomy Systems", Intelligent and Robotic Systems, vol. 9, pp. 193-203, 1994. https://doi.org/10.1007/BF01276498
- International Electrotechnical Commission, IEC 60812 : Analysis techniques for system reliability - Procedure for failure mode and effects analysis (FMEA), International Electrotechnical Commission, 1985.
- Michael V. Carras Jr, "BDA Enhancement Methodology Using Situational Parameter Adjustments", Air Force Institute of Technology, 2006.
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