Oscillations make a self-scaled model for honeybees’ visual odometer reliable regardless of flight trajectory

Author:

Bergantin Lucia1,Harbaoui Nesrine12ORCID,Raharijaona Thibaut13,Ruffier Franck1ORCID

Affiliation:

1. Aix-Marseille University, CNRS, ISM, Marseille, France

2. CRIStAL Laboratory, CNRS UMR, 9189, University of Lille, 59650 Lille, France

3. Université de Lorraine, Arts et Métiers Institute of Technology, LCFC, HESAM Université, 57070 Metz, France

Abstract

Honeybees foraging and recruiting nest-mates by performing the waggle dance need to be able to gauge the flight distance to the food source regardless of the wind and terrain conditions. Previous authors have hypothesized that the foragers’ visual odometer mathematically integrates the angular velocity of the ground image sweeping backward across their ventral viewfield, known as translational optic flow. The question arises as to how mathematical integration of optic flow (usually expressed in radians/s) can reliably encode distances, regardless of the height and speed of flight. The vertical self-oscillatory movements observed in honeybees trigger expansions and contractions of the optic flow vector field, yielding an additional visual cue called optic flow divergence. We have developed a self-scaled model for the visual odometer in which the translational optic flow is scaled by the visually estimated current clearance from the ground. In simulation, this model, which we have called SOFIa, was found to be reliable in a large range of flight trajectories, terrains and wind conditions. It reduced the statistical dispersion of the estimated flight distances approximately 10-fold in comparison with the mathematically integrated raw optic flow model. The SOFIa model can be directly implemented in robotic applications based on minimalistic visual equipment.

Funder

Agence Nationale de la Recherche

Direction Générale de l'Armement

Publisher

The Royal Society

Subject

Biomedical Engineering,Biochemistry,Biomaterials,Bioengineering,Biophysics,Biotechnology

Reference51 articles.

1. Von Frisch K. 1967 The dance language and orientation of bees. Cambridge, MA: Harvard University Press.

2. Neese V. 1988 Entfernungsmessung der sammelbiene: ein energetisches und zugleich sensorisches problem. In The flying honeybee: aspects of energetics/die fliegende honigbiene: Aspekte der energetik, werner nachtigall (ed.). Stuttgart: Gustav Fischer.

3. Honeybee waggle dances: the ?energy hypothesis? and thermoregulatory behavior of foragers

4. Honeybees use optic flow to measure the distance of a food source

5. Distance estimation by foraging honeybees

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