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Design and Implementation of Hybrid Formation System

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Information Technology and Intelligent Transportation Systems

Part of the book series: Advances in Intelligent Systems and Computing ((AISC,volume 455))

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Abstract

In the paper the three-dimensional visualization system based on FlightGear, MFC and Matlab (Simulink) was designed. For future war mode that man-aircraft mixed with UAV cooperative engagement and enhance the demand of virtual realization effect of 3D visualization, the three-dimensional visualization system by functional modules was constructed and integrated each module to visual simulation; The system unions time-sequence actuation mechanism, virtual reality technology, UAV model rendering software, FlightGear visual simulation flight software and UAV dynamics Simulink and makes the flight data and flight visual to be Time-Succession, visible, and brings high participant operation to operator, enables each simulation module to be renewable and exchangeable. During numbers of simulation experimentation, this system implements a series of 3D visual formation flight simulation, air combat demonstration, weather conditions and geographical environment, which has three-dimensional visualization effect.

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References

  1. Torens C, Adolf F (2014) Certification and Software Verification Considerations for Autonomous Unmanned Aircraft. vol 10, no 11, pp 649–664

    Google Scholar 

  2. Rew DY, Lee WR, Koo CH (2013) HILS approach in the virtual flight test of the Korean lunar lander demonstrator. In: Proceedings of the AIAA modeling and simulation technologies (MST) Conference. Boston, MA, pp 1013–1015

    Google Scholar 

  3. Tian YL, Liu F (2013) Virtual simulation-based evaluation of ground handling for future aircraft concepts. J Aerosp Inf Syst 5(10):218–228

    Google Scholar 

  4. Olthoff C, Schnaitmann J (2013) Development status of V-SUIT-The virtual space suit simulation software. In: Proceedings of the 43rd international conference on environmental systems, Vail, CO

    Google Scholar 

  5. Sullivan B, Malsom S (2002) Development of a real-time virtual airspace simulation capability for air traffic management research. In: Proceedings of the AIAA modeling and simulation technologies conference and exhibit, Monterey, California

    Google Scholar 

  6. Li W, Zhang H (2009) Simulation platform design and realization for unmanned aerial vehicle formation control, J Syst Simul, 21(03):691–694

    Google Scholar 

  7. Laughlin M, Briceno DS (2014) A virtual experimentation platform enabling the design, testing, and verification of an unmanned aerial vehicle through cyber-physical, component-based design. In: Proceedings of the 14th AIAA aviation technology, integration, and operations conference, Atlanta, GA. pp 2720–2731

    Google Scholar 

  8. Luo M, Kamel AE (2011) UML-based design of intelligent vehicles virtual reality platform, systems, man, and cybernetics (SMC), pp 115–120

    Google Scholar 

  9. Zhou T (2013) Research on network communication between Simulink and VC++ based on Sfunction. Mod Electron Tech, 13(36):108–111

    Google Scholar 

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Acknowledgments

This work is partially supported by the Program for Liaoning Excellent Talents in University (No. LJQ2014018) and the Scientific Research General Project of Education Department of Liaoning Province, China (No. L2014066). The authors also gratefully acknowledge the helpful comments and suggestions of the reviewers, which have improved the presentation.

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Correspondence to Cangku Wang .

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Li, Y., Wang, C., Wang, Y., Zhang, S. (2017). Design and Implementation of Hybrid Formation System. In: Balas, V., Jain, L., Zhao, X. (eds) Information Technology and Intelligent Transportation Systems. Advances in Intelligent Systems and Computing, vol 455. Springer, Cham. https://doi.org/10.1007/978-3-319-38771-0_16

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  • DOI: https://doi.org/10.1007/978-3-319-38771-0_16

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  • Publisher Name: Springer, Cham

  • Print ISBN: 978-3-319-38769-7

  • Online ISBN: 978-3-319-38771-0

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