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April 25, 2026Integrative and Comparative Biology0 citations

Predator presence influences the geometry of rosy starling flocks

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VDVenu DivinJJJitesh Jhawar

Key Points

  • This study aims to explore how the presence of predators influences the geometric shapes of rosy starling flocks during movement to roosting sites.
  • Identified 12 canonical shapes of rosy starling flocks during movement to roosting sites.
  • Analysed flock shape changes over time in relation to predator presence.
  • Examined transitions between flock shapes influenced by external factors.
  • Diverse shape dynamics were observed in the presence of predators, with significant transitions noted.
  • Flock shapes changed adaptively as a response to predation risk, indicating a functional survival mechanism.
  • These findings underline the role of ecological influences in shaping collective bird behaviour.

Abstract

Aerial flocks of birds provide striking examples of collective behaviour, yet how flock structure responds dynamically to environmental context remains poorly understood. Such flocks are particularly vulnerable to predation, and interactions between individuals and their external environment can generate distinct group-level shapes. The rosy starling (Pastor roseus), a wintering species in India, forms large flocks at foraging, resting, roosting, and breeding sites. At dusk, these birds frequently form flocks while moving from foraging areas to roosting locations; however, the nature of their interactions with surrounding ecological factors during this phase has not been quantified. Here, we identify 12 canonical shapes exhibited by aerial flocks of rosy starlings during their movement to roosting sites. We analyse how flock shapes change over time, how these dynamics are influenced by the presence of predators, and how transitions between shapes occur. Our results reveal pronounced shape dynamics associated with predator presence, with shape transitions driven by external influences. These findings support the idea that flocking and its geometries function as adaptive mechanisms for predator avoidance. Overall, this study advances our understanding of aerial flocking behaviour in birds and provides a framework for future investigations into the ecological and evolutionary drivers of collective motion in starling flocks.

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Cite This Study

Divin et al. (2026) studied this question.

synapsesocial.com/papers/69ec5b0688ba6daa22dac924https://doi.org/10.1093/icb/icag027
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