METHOD OF MULTI-OBJECTIVE RESOLUTION OF TWO-AIRCRAFT CONFLICT IN THREE-DIMENSIONAL SPACE BASED ON DYNAMIC PROGRAMMING

Authors

  • Denys Vasyliev Ukrainian State Air Traffic Services Enterprise (UkSATSE), Boryspil, Ukraine; National Aviation University, Kyiv, Ukraine

DOI:

https://doi.org/10.18372/2306-1472.68.10907

Keywords:

aircraft, air traffic control, conflict resolution, dynamic programming, flight safety, multi-objective optimization

Abstract

Purpose: Current global trends of air traffic growth cause the increasing of number of aircraft conflicts. The actual problem is a development of new methods for conflict resolution that should provide the synthesis of conflict-free trajectories in three-dimensional space according to different flight efficiency criteria. Methods: The problem of multi-objective resolution of potential conflict between two aircraft in three-dimensional space is considered. The method of multi-objective resolution of conflict between two aircraft using heading, speed and altitude change maneuvers has been developed. Described method provides the synthesis of conflict-free flight trajectory according to criteria of flight regularity, flight economy and the complexity of maneuvering based on dynamic programming. The continuous-time and discrete-time equations of multi-objective dynamic programming for determining the set of Pareto-optimal estimations of conflict-flight trajectories are shown. The synthesis of Pareto-optimal trajectories is carried out using the forward procedure of discrete multi-objective dynamic programming. The simulation of flight trajectories is performed using the special model of controlled aircraft motion. The selection of optimal conflict-free trajectory from the set of Pareto-optimal trajectories is carried out using the convolution of optimality criteria. Within described method, the following procedures have been defined: for prediction of separation minima violations; for aircraft states and controls discretization; for interpolation of trajectories efficiency estimations according to defined optimality criteria. Results: The analysis of the proposed method is performed using computer simulation which results show that computed optimal conflict-free trajectory ensures the conflict avoidance and complies with defined optimality criteria. Discussion: The main advantages of the method are: heading, speed and altitude change maneuvers are used for conflict avoidance; the multi-objective optimization of conflict-free trajectories is applied; the using of dynamic programming enhances the computational efficiency. Proposed method can be used for development of advanced conflict resolution tools for automated air traffic control systems.

Author Biography

Denys Vasyliev, Ukrainian State Air Traffic Services Enterprise (UkSATSE), Boryspil, Ukraine; National Aviation University, Kyiv, Ukraine

PhD.

Instructor of Training and Certification Centre of Ukrainian State Air Traffic Services Enterprise (UkSATSE), Boryspil, Ukraine.

Associate Professor of Air Navigation Systems Department of National Aviation University, Kyiv, Ukraine.

PhD (Eng) on specialty “Navigation and Air Traffic Control” (2014)

Education: National Aviation University, Kyiv, Ukraine (2010).

Research area: situation analysis and decision-making in air traffic management.

References

Eby, M.S. A Self-Organizational Approach for Resolving Air Traffic Conflicts. The Lincoln Laboratory Journal. - 1994. - Vol. 7 (2). - P. 239-254.

Eby, M.S.; Kelly, W.E. Free Flight Separation Assurance Using Distributed Algorithms. Proc. of IEEE Aerospace Conf., Snowmass. - 1999. - P. 429-441.

Kosecka, J.; Tomlin, C.; Pappas, G.; Sastry, S. Generation of Conflict Resolution Maneuvers for Air Traffic Management. Proceedings of The 1997 IEEE/RSJ International Conference On Intelligent Robot And Systems. - 1997. - Vol.3 - P. 1598 - 1603.

Zeghal, K. A. Review of Different Approaches Based on Force Fields for Airborne Conflict Resolution. Proc. AIAA Guidance, Navigation, and Control Conf. - Boston, 1998. - P. 818-827.

Bicchi, A; Pallottino, L. On Optimal Cooperative Conflict Resolution for Air Traffic Management Systems. IEEE Transactions on Intelligent Transportation Systems. - 2000. - Vol. 1, No. 4.– P.221-232.

Hu., J.; Prandini, M.; Sastry, S. Optimal Maneuver for Multiple Aircraft Conflict Resolution: A Braid Point of View. Proc. of the 39th IEEE conf. on decision and control. - Sydney. - 2000. - Vol. 4. - P. 4164-4169.

Hu, J.; Prandini, M.; Sastry, S. Optimal Coordinated Maneuvers for Three Dimensional Aircraft Conflict Resolution. Journal of Guidance, Control, and Dynamics. - 2002. - Vol. 25, No. 5 - P. 888-900.

Cetek, C. Realistic Speed Change Maneuvers for Air Traffic Conflict Avoidance and their Impact on Aircraft Economics. International Journal of Civil Aviation. - 2009. - Vol. 1 (1). - P. 62-73.

Cafieri, S.; Durand, N. Aircraft deconfliction with speed regulation: new models from mixed-integer optimization. Journal of Global Optimization. - 2014. - Vol. 58(4). - P. 613-629.

Ehrmanntraut, R.; Christien, R. Analysis of Aircraft Conflict Geometries in Europe. Digital Avionics Systems Conference, 24-28 Oct. 2004. - Vol.1 - P. 3.E.2-1– 3.E.2-7

Paglione, M.M.; Santiago, C.; Crowell, A.; Oaks, R.D. Analysis of the Aircraft to Aircraft Conflict Properties in the National Airspace System. AIAA Guidance, Navigation and Control Conference and Exhibit, 18-21 August 2008, Honolulu, Hawaii.

Vasyliev, D.V. Multi-Objective Synthesis of Conflict-Free Aircraft Trajectories. Science-based Technologies. - 2014. - 1. - P. 37-40. (in Ukrainian)

Bellman, R. Dynamic Programming. - Princeton, New Jersey: Princeton University Press, 1957, Six Printing, 1972.

Kogan, D.I. Dynamic Programming and Discrete Multi-Objective Optimization: Tutorial. - Nizhny Novgorod: Publishing House of Nizhny Novgorod State University, 2005. - 260 p. (in Russian)

Vasyliev, D.V. Mathematical Model of Controlled Aircraft Motion for Analysis of Air Navigation Service Processes. Systems of Arms and Military Equipment. - 2013. - 2. - P. 63-67. (in Ukrainian)

Vasyliev, D.V. Model of Multi-Objective Selection of Trajectories for Aircraft Conflicts Resolution. Systems of Information Processing. - Kharkiv: KhUAF, 2013. - Issue 4 (111). - P. 85-88. (in Ukrainian)

Published

11-11-2016

How to Cite

Vasyliev, D. (2016). METHOD OF MULTI-OBJECTIVE RESOLUTION OF TWO-AIRCRAFT CONFLICT IN THREE-DIMENSIONAL SPACE BASED ON DYNAMIC PROGRAMMING. Proceedings of National Aviation University, 68(3), 35–45. https://doi.org/10.18372/2306-1472.68.10907

Issue

Section

AEROSPACE SYSTEMS FOR MONITORING AND CONTROL