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GEOMDIGEST / PAPERS / A-SCALABLE-APPROACH-TO-CONTROL-DIVERSE-BEHAVIORS-FOR-PHYSICALLY-SIMULATED-CHARAC-2020-710353
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A scalable approach to control diverse behaviors for physically simulated characters

2020 / ACM Transactions on Graphics / DOI 10.1145/3386569.3392381

Human characters with a broad range of natural looking and physically realistic behaviors will enable the construction of compelling interactive experiences. In this paper, we develop a technique for learning controllers for a large set of heterogeneous behaviors. By dividing a reference library of motion into clusters of like motions, we are able to construct experts , learned controllers that can reproduce a simulated version of the motions in that cluster. These experts are then combined via a second learning phase, into a general controller with the capability to reproduce any motion in the reference library. We demonstrate the power of this approach by learning the motions produced by a motion graph constructed from eight hours of motion capture data and containing a diverse set of behaviors such as dancing (ballroom and breakdancing), Karate moves, gesturing, walking, and running.

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A scalable approach to control diverse behaviors for phys...
2020 / 138 citations