Vertebrate pollinators: phase transition in a time-dependent generalized traveling-salesperson problem
M. Jungsbluth, J. Thiele, Y. Winter, H. Schawe, and A. K. Hartmann

TL;DR
This paper models nectar harvesting by flower visitors as a generalized, time-dependent traveling-salesperson problem, revealing a phase transition in optimal foraging and matching field data on bat behavior.
Contribution
Introduces a novel generalized TSP model for nectar foraging, incorporating multiple animals and time-dependent resources, with numerical analysis and empirical validation.
Findings
Power-law distribution of travel distances emerges naturally.
A phase transition occurs at a critical nectar amount, affecting optimization complexity.
Field data confirms the model's predictions and shows bats optimize routes.
Abstract
We introduce a model for the global optimization problem of nectar harvesting by flower visitors, e.g., nectar-feeding bats, as a generalization of the (multiple) traveling-salesperson problem (TSP). The model includes multiple independent animals and many flowers with time-dependent content. This provides an ensemble of realistic combinatorial optimization problems, in contrast to previously studied models like random Satisfiability or standard TSP. We numerically studied the optimum harvesting of these foragers, with parameters obtained from experiments, by using genetic algorithms. For the distribution of travel distances, we find a power-law (or L\'evy) distribution, as often found for natural foragers. Note, in contrast to many models, we make no assumption about the nature of the flight-distance distribution, the power law just emerges. This is in contrast to the TSP, where we…
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Taxonomy
TopicsDiffusion and Search Dynamics · Animal Behavior and Reproduction · Animal Vocal Communication and Behavior
