Water Wave Simulation with Dispersion Kernels | Two Minute Papers #110
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Water Wave Simulation with Dispersion Kernels | Two Minute Papers #110

Two Minute Papers 01.12.2016 8 434 просмотров 311 лайков

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The paper "Dispersion Kernels for Water Wave Simulation" is available here: http://www.gmrv.es/Publications/2016/CMTKPO16/ Recommended for you: Rocking Out With Convolutions - https://www.youtube.com/watch?v=JKYQOAZRZu4 Separable Subsurface Scattering - https://www.youtube.com/watch?v=72_iAlYwl0c&t=1s WE WOULD LIKE TO THANK OUR GENEROUS PATREON SUPPORTERS WHO MAKE TWO MINUTE PAPERS POSSIBLE: Sunil Kim, Julian Josephs, Daniel John Benton, Dave Rushton-Smith, Benjamin Kang. https://www.patreon.com/TwoMinutePapers Subscribe if you would like to see more of these! - http://www.youtube.com/subscription_center?add_user=keeroyz Music: Dat Groove by Audionautix is licensed under a Creative Commons Attribution license (https://creativecommons.org/licenses/by/4.0/) Artist: http://audionautix.com/ The thumbnail background image is taken from the corresponding paper (link available above). Splash screen/thumbnail design: Felícia Fehér - http://felicia.hu Károly Zsolnai-Fehér's links: Facebook → https://www.facebook.com/TwoMinutePapers/ Twitter → https://twitter.com/karoly_zsolnai Web → https://cg.tuwien.ac.at/~zsolnai/

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Segment 1 (00:00 - 03:00)

dear fellow Scholars this is 2minute papers with Caro in this piece of work we are interested in simulating the Dynamics of water waves there are quite a few forces acting on a bucket of water such as surface tension internal pressure external force fields such as wind for instance and gravity therefore it is not a surprise that these waves can become quite complex with a lot of high frequency details that are difficult to simulate accurately modeling wave Reflections after colliding with solids is also an important and highly sought-after detail to capture this piece of work simulates Sir George Biddle AR's dispersion model now what does this mean exactly the ARA model describes many common wave phenomena accurately such as how longer waves are dominated by gravitational forces and how shorter waves dance mostly according to the will of surface tension however as amazing this theory is it does not formulate these quantities in a way that would be directly applicable to a computer simulation the main contribution of this paper is a new convolution formulation of this model and some more optimizations that can be directly added into a simulation and not only that but the resulting algorithm parallelizes and Maps well to the graphical card in our computers we have earlier discussed what a convolution is essentially it is a mathematical operation that can add reverberation to the sound of our guitar or accurately simulate how light bounces around under our skin links to these episodes are available in the video description and at the end of the video check them out I'm sure you'll have a lot of fun with them regarding applications as the technique obeys AR's classical dispersion model I expect and hope this to be useful for ocean and Coastal Engineering and in simulating huge tidal Wes note that limitations apply for instance the original linear theory is mostly good for shallow water simulation and larger waves in deeper waters the proposed approximation itself also has inherent limitations such as the possibility of waves going through thinner objects the resulting algorithm is however very accurate and honestly a joy to watch it is also shown to support larger scale scenes here you see how beautifully it can simulate the capillary waves produced by these raindrops and of course the waves around the Swans in the pond this example took roughly one and a half second per frame to compute you know the drill a couple more follow-up papers down the line and it will surely run in real time can't wait also please let me know in the comment section whether you have found this episode understandable was it easy to follow too much your feedback is as always highly appreciated thanks for watching and for your generous support and I'll see you next time a

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