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Batteries, camera, action! Learning a semantic control space for expressive robot cinematography
[article]
2021
arXiv
pre-print
Aerial vehicles are revolutionizing the way film-makers can capture shots of actors by composing novel aerial and dynamic viewpoints. However, despite great advancements in autonomous flight technology, generating expressive camera behaviors is still a challenge and requires non-technical users to edit a large number of unintuitive control parameters. In this work, we develop a data-driven framework that enables editing of these complex camera positioning parameters in a semantic space (e.g.
arXiv:2011.10118v2
fatcat:jmf2t7kbqfd77dklau3m3pssja