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Trivial Algorithm for Interactive Water Simulation

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Part of the book series: Lecture Notes in Computer Science ((LNIP,volume 10850))

Abstract

The paper introduces a simple and computationally efficient algorithm for dynamic and interactive water simulation in applications where physical accuracy is not required, but a credible look and little impact on rendering speed are of crucial importance.

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References

  1. Hastings, E.J., Guha, R.K., Stanley, K.O.: Interactive evolution of particle systems for computer graphics and animation. IEEE Trans. Evol. Comput. 13, 418–432 (2009)

    Article  Google Scholar 

  2. Reeves, W.T.: Particle systems—a technique for modeling a class of fuzzy objects. ACM Trans. Graph. 2, 91–108 (1983)

    Article  Google Scholar 

  3. Harada, T., Koshizuka, S., Kawaguchi, Y.: Smoothed particle hydrodynamics on GPUs. In: Computer Graphics International, pp. 63–70. SBC Petropolis (2007)

    Google Scholar 

  4. Johanson, C.: Real-time water rendering: introducing the projected grid concept (2004). http://fileadmin.cs.lth.se/graphics/theses/projects/projgrid/

  5. Tessendorf, J.: Simulating ocean water. Simul. Nat. Realistic Interact. Tech. SIGGRAPH. 1, 5 (2001)

    Google Scholar 

  6. Jensen, L.S., Golias, R.: Deep-water animation and rendering. In: Game Developer’s Conference (Gamasutra) (2001)

    Google Scholar 

  7. Kass, M., Miller, G.: Rapid, stable fluid dynamics for computer graphics. In: Proceedings of the 17th Annual Conference on Computer Graphics and Interactive Techniques, pp. 49–57. ACM, New York (1990)

    Google Scholar 

  8. Miklós, B., Müller, M.: Real time fluid simulation using height fields (2004). http://www.balintmiklos.com/layered_water.pdf

  9. Noe, K., Trier, P.: Implementing rapid, stable fluid dynamics on the GPU (2004). https://users-cs.au.dk/noe/projects/GPU_water_simulation/gpu-water.pdf

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Acknowledgements

This work and the contribution were supported by a project of Students Grant Agency (SPEV) - FIM, University of Hradec Kralove, Czech Republic. Jan Tobola is a student member of the research team. The authors of this paper would like to thank Jan Budina, a PhD student of Applied Informatics at the University of Hradec Kralove, for testing the simulation prototype.

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Correspondence to Jan Vaněk .

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Vaněk, J., Tobola, J., Petránek, K., Ježek, B., Černá, M. (2018). Trivial Algorithm for Interactive Water Simulation. In: De Paolis, L., Bourdot, P. (eds) Augmented Reality, Virtual Reality, and Computer Graphics. AVR 2018. Lecture Notes in Computer Science(), vol 10850. Springer, Cham. https://doi.org/10.1007/978-3-319-95270-3_43

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  • DOI: https://doi.org/10.1007/978-3-319-95270-3_43

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  • Publisher Name: Springer, Cham

  • Print ISBN: 978-3-319-95269-7

  • Online ISBN: 978-3-319-95270-3

  • eBook Packages: Computer ScienceComputer Science (R0)

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