Related Experiment Video
Updated: Aug 20, 2025

Building an Enhanced Flight Mill for the Study of Tethered Insect Flight
Published on: March 10, 2021
Flies trade off stability and performance via adaptive compensation to wing damage
Wael Salem1, Benjamin Cellini1, Heiko Kabutz2
1Department of Mechanical Engineering, The Pennsylvania State University, University Park, PA 16802, USA.
Abstract:
Physical injury often impairs mobility, which can have dire consequences for survival in animals. Revealing mechanisms of robust biological intelligence to prevent system failure can provide critical insights into how complex brains generate adaptive movement and inspiration to design fault-tolerant robots. For flying animals, physical injury to a wing can have severe consequences, as flight is inherently unstable. Using a virtual reality flight arena, we studied how flying fruit flies compensate for damage to one wing. By combining experimental and mathematical methods, we show that flies compensate for wing damage by corrective wing movement modulated by closed-loop sensing and robust mechanics. Injured flies actively increase damping and, in doing so, modestly decrease flight performance but fly as stably as uninjured flies. Quantifying responses to injury can uncover the flexibility and robustness of biological systems while informing the development of bio-inspired fault-tolerant strategies.
Related Concept Videos
Limits to Natural Selection
Controller Configurations
Control-system compensation involves various configurations, most commonly series or cascade compensation, in which the controller...
Frequency-dependent Selection
Convergent Evolution
Load-frequency control
Compensation Mechanisms
Respiratory Compensation
This mechanism addresses metabolic-induced pH imbalances by adjusting breathing rates. Respiratory compensation begins within minutes of detecting a pH...

