Fish locomotor dynamics quantified using multiple inertial measurement units

Abstract Animals exhibit a diversity of locomotor behaviours that vary with body shape, ontogeny, motivation and environment. Documenting these behaviours often relies on recording videos of animals in controlled conditions displaying stereotyped behaviours. By contrast, animal-borne motion sensing data loggers can document diverse behaviours of animals in their natural environment. Traditionally, one data logger is used to infer body dynamics; however, a single location presents an incomplete picture of body movement. Here, we deploy multiple independent inertial measurement units on individual fish to study within-body dynamics and assess the accuracy of this approach compared to traditional video methods. Using a combination of robotic and animal experiments, we accurately measure the timing, direction and magnitude of movement of multiple locations along the body and can recreate accurate three-dimensional midline kinematics without video data. Furthermore, we show that with as few as two data loggers, parameters such as propulsive wavelength can be calculated, even during high-intensity behaviours. Using multiple data loggers has the potential to provide unbiased spatio-temporal estimates of fish kinematics, allowing kinematic studies to be extended to new species, new habitats and a diversity of natural fish locomotor behaviours beyond those traditionally studied in laboratory settings.

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Publication Details

Journal
Royal Society Open Science
Published
2026-09-30
DOI
https://doi.org/10.1098/rsos.251863
Primary Topic
Biomimetic flight and propulsion mechanisms
Type
article
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Fish locomotor dynamics quantified using multiple inertial measurement units

Elsa Marie-Catherine Goerig, Connor Frederick White, GEORGE V. LAUDER, Theodore Castro-Santos
Royal Society Open Science
Biomimetic flight and propulsion mechanisms
article

Fish locomotor dynamics quantified using multiple inertial measurement units

Elsa Marie-Catherine Goerig, Connor Frederick White, GEORGE V. LAUDER, Theodore Castro-Santos
article en

Abstract

Abstract Animals exhibit a diversity of locomotor behaviours that vary with body shape, ontogeny, motivation and environment. Documenting these behaviours often relies on recording videos of animals in controlled conditions displaying stereotyped behaviours. By contrast, animal-borne motion sensing data loggers can document diverse behaviours of animals in their natural environment. Traditionally, one data logger is used to infer body dynamics; however, a single location presents an incomplete picture of body movement. Here, we deploy multiple independent inertial measurement units on individual fish to study within-body dynamics and assess the accuracy of this approach compared to traditional video methods. Using a combination of robotic and animal experiments, we accurately measure the timing, direction and magnitude of movement of multiple locations along the body and can recreate accurate three-dimensional midline kinematics without video data. Furthermore, we show that with as few as two data loggers, parameters such as propulsive wavelength can be calculated, even during high-intensity behaviours. Using multiple data loggers has the potential to provide unbiased spatio-temporal estimates of fish kinematics, allowing kinematic studies to be extended to new species, new habitats and a diversity of natural fish locomotor behaviours beyond those traditionally studied in laboratory settings.

Royal Society Open ScienceVol. 13(9)
United States Geological Survey (US), Evolutionary Genomics (United States) (US), University of Virginia (US)
Openalex Percentile: Top 8%
Biomimetic flight and propulsion mechanisms
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Fish locomotor dynamics quantified using multiple inertial measurement units — Elsa Marie-Catherine Goerig, Connor Frederick White, et al. · Royal Society Open Science (2026) | TGRS Research Map | TGRS