Collective behaviour across animal species
Pietro De Lellis, Giovanni Polverino, Gozde Ustuner, Nicole Abaid, Simone Macrı̀, Erik M. Bollt, Maurizio Porfiri
- 发表年份
- 2014
- 引用次数
- 57
- 访问权限
- 开放获取
摘要
We posit a new geometric perspective to define, detect, and classify inherent patterns of collective behaviour across a variety of animal species. We show that machine learning techniques, and specifically the isometric mapping algorithm, allow the identification and interpretation of different types of collective behaviour in five social animal species. These results offer a first glimpse at the transformative potential of machine learning for ethology, similar to its impact on robotics, where it enabled robots to recognize objects and navigate the environment.
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