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Motion Planning Using Fast Marching Squared Method

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Motion and Operation Planning of Robotic Systems

Part of the book series: Mechanisms and Machine Science ((Mechan. Machine Science,volume 29))

Abstract

Robotic motion planning have been, and still is, a very intense research field. Many problems have been already solved and even real-time, optimal motion planning algorithms have been proposed and successfully tested in real-world scenarios. However, other problems are not satisfactory solved yet and also new motion planning subproblems are appearing. In this chapter we detail our proposed solution for two of these problems with the same underlying method: non-holonomic planning and outdoor motion planning. The first is characterized by the fact that many vehicles cannot move in any direction at any time (car-like robots). Therefore, kinematic constrains need to be taken into account when planning a new path. Outoor motion planning focuses on the problem that has to be faced when a robot is going to work in scenarios with non-flat ground, with different floor types (grass, sand, etc.). In this case the path computed should take into account the capabilities of the robot to properly model the environment. In order to solve these problems we are using the Fast Marching Square method, which has proved to be robust and efficient in the recent past when applied to other robot motion planning subproblems.

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References

  1. Sethian JA (1996) A fast marching level set method for monotonically advancing fronts. Proc Natl Acad Sci 93:1591–1595

    Article  MATH  MathSciNet  Google Scholar 

  2. Jbabdi S, Bellec P, Toro R, Daunizeau J, Plgrini-Issac M, Benali H (2008) Accurate anisotropic fast marching for diffusion-based geodesic tractography. Int J Biomed Imaging 2008:12

    Article  Google Scholar 

  3. Li H, Xue Z, Cui K, Wong STC (2011) Diffusion tensor-based fast marching for modeling human brain connectivity network. Comput Med Imag Graph 35(3):167–178

    Article  Google Scholar 

  4. Yang K, Li M, Liu Y, Jiang C (2010) Multi-points fast marching: a novel method for  road extraction. In: Proceedings of the 18th international conference geoinformatics: GIScience in change, geoinformatics, June 2010, pp 1–5

    Google Scholar 

  5. Sethian JA (1996) Level set methods. Cambridge University Press, Cambridge

    MATH  Google Scholar 

  6. Garrido S, Moreno L, Abderrahim M, Blanco D (2009) FM2: a real-time sensor-based feedback controller for mobile robots. Int J Robot Autom 24(1):3169–3192

    Google Scholar 

  7. Yatziv L, Bartesaghi A, Sapiro G (2005) A fast O(n) implementation of the fast marching algorithm. J Comput Phys 212:393–399

    Article  Google Scholar 

  8. Adalsteinsson D, Sethian JA (1995) A fast level set method for propagating interfaces. J Comput Phys 118(2):269–277

    Article  MATH  MathSciNet  Google Scholar 

  9. Garrido S, Moreno L, Blanco D (2007) Sensor-based global planning for mobile robot navigation. Robotica 25:189–199

    Article  Google Scholar 

  10. Garrido S, Moreno L, Blanco D (2008) Exploration of 2D and 3D environments using Voronoi transform and fast marching method. J Intell Robot Syst 55(1):55–80

    Article  Google Scholar 

  11. Valero-Gomez A, Gomez J, Garrido S, Moreno L (2013) The path to efficiency: fast marching method for safer, more efficient mobile robot trajectories. Robot Autom Mag, IEEE 20(4):111–120

    Article  Google Scholar 

  12. Gomez JV, Vale A, Valente F, Ferreira J, Garrido S, Moreno L (2013) Fast  marching in motion planning for Rhombic like vehicles operating in ITER. In: IEEE international conference on robotics and automation, pp 5533–5538

    Google Scholar 

  13. Ulrich I, Borenstein J (2000) Vfh*: local obstacle avoidance with lookahead verification. In: Proceedings of the IEEE international conference on robotics and automation, pp 2505–2511

    Google Scholar 

  14. Minguez J, Montano L (2001) Global nearness diagram navigation. In:  Proceedings of the IEEE international conference on robotics and automation, Seoul, Korea, pp 33–39

    Google Scholar 

  15. Castejon C, Boada B, Blanco D, Moreno L (2005) Traversable region modeling for outdoor navigation. J Intell Robot Syst 43(2–4):175–216

    Article  Google Scholar 

  16. Alton KR, Mitchel IM (2008) Fast marching methods for stationary Hamilton-Jacob equations with axis-aligned anisotropy. SIAM J Numer Anal 47(1):363–385

    Article  MathSciNet  Google Scholar 

  17. Petres C, Pailhas Y, Evans J, Petillot Y, Lane D (2005) Underwater path planing using fast marching algorithms. IEEE Oceans 2005 Eur Conf 2:814–819

    Google Scholar 

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Correspondence to S. Garrido .

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Garrido, S., Moreno, L., Gómez, J.V. (2015). Motion Planning Using Fast Marching Squared Method. In: Carbone, G., Gomez-Bravo, F. (eds) Motion and Operation Planning of Robotic Systems. Mechanisms and Machine Science, vol 29. Springer, Cham. https://doi.org/10.1007/978-3-319-14705-5_8

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  • DOI: https://doi.org/10.1007/978-3-319-14705-5_8

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  • Publisher Name: Springer, Cham

  • Print ISBN: 978-3-319-14704-8

  • Online ISBN: 978-3-319-14705-5

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