Evolved Control of Natural Plants: Crossing the Reality Gap for User-Defined Steering of Growth and Motion.
- Daniel Nicolas Hofstadler,
- Mostafa Wahby,
- Mary Katherine Heinrich,
- Heiko Hamann,
- ,
- Phil Ayres
- University of Graz,
- University of Lübeck,
- Centre for Information Technology and Architecture
Research Output:
Journal Article or Conference Article in Journal
Journal article
Peer-reviewOpen access
Publication Information
Output type
Research Output:
Journal Article or Conference Article in Journal
Journal article
Peer-reviewOriginal language
EnglishArticle number
3Pages from-to (Number of pages)
Pages 15:1-15:24Journal (Volume, Issue Number)
ACM Transactions on Autonomous and Adaptive Systems (Volume 12, Issue 3)Publication milestones
- Published - 2017
Publication status
Published - 2017
Publication IDs
- Scopus: 85030213419
Abstract
Mixing societies of natural and artificial systems can provide interesting and potentially fruitful research targets. Here we mix robotic setups and natural plants in order to steer the motion behavior of plants while growing. The robotic setup uses a camera to observe the plant and uses a pair of light sources to trigger phototropic response, steering the plant to user-defined targets. An evolutionary robotic approach is used to design a controller for the setup. Initially, preliminary experiments are performed with a simple pre determined controller and a growing bean plant. The plant behavior in response to the simple controller is captured by image processing, and a model of the plant tip dynamics is developed. The model is used in simulation to evolve a robot controller that steers the plant tip such that it follows a number of randomly generated target points. Finally, we test the simulation-evolved controller in the real setup controlling a natural bean plant. The results demonstrate a successful crossing of the reality gap in the setup. The success of the approach allows for future extensions to more complex tasks including control of the shape of plants and pattern formation in multiple plant setups.
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