1. Practical Resources for Developing Idiosyncratic Generative Systems for Dance
- Author
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Bisig, Daniel, Soddu, Celestino, and Colabella, Enrica
- Subjects
Dance ,Machine Learning ,Creative Coding ,Generative Art - Abstract
Computer-based generative approaches possess a great creative potential in Contemporary Dance, in particular for artistic realisations that combine dance and technology. At the same time, the adoption and dissemination of generative approaches in dance is hampered by the fact that Dance and Technology is a small subfield within Contemporary Dance, with Generative Dance occupying an even smaller niche within this subfield. The work presented in this paper tries to ameliorate this situation by supporting artistic communities in Contemporary Dance and Generative Art with practical resources in the form of source code, dance data, educational articles, and documentations of exemplary artistic realisations. This material is meant to motivate and facilitate the selection from and adoption of a wide range of computational techniques and their use as foundations for realising dance specific generative systems. These techniques include both computer simulations and machine learning models that have proven useful in the author's own collaborations with dancers and choreographers for translating embodied creation principles into generative procedures. With regards to the integration of generative systems into the creative process, the provided material differentiates itself from other existing tools and collections in that it supports artists in devising their own idiosyncratic generative systems instead of working with a readily available but inscrutable software., + ID: 591463
- Published
- 2022
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