Scinovex
article Open AccessTop 1% cited

Dispersal Data and the Spread of Invading Organisms

Ecology · 1996 · Vol. 77(7) · pp. 2027–2042

Abstract

Models that describe the spread of invading organisms often assume that the dispersal distances of propagules are normally distributed. In contrast, measured dispersal curves are typically leptokurtic, not normal. In this paper, we consider a class of models, integrodifference equations, that directly incorporate detailed dispersal data as well as population growth dynamics. We provide explicit formulas for the speed of invasion for compensatory growth and for different choices of the propagule redistribution kernel and apply these formulas to the spread of D. pseudoobscura. We observe that: (1) the speed of invasion of a spreading population is extremely sensitive to the precise shape of the redistribution kernel and, in particular, to the tail of the distribution; (2) fat—tailed kernels can generate accelerating invasions rather than constant—speed travelling waves; (3) normal redistribution kernels (and by inference, many reaction—diffusion models) may grossly underestimate rates of spread of invading populations in comparison with models that incorporate more realistic leptokurtic distributions; and (4) the relative superiority of different redistribution kernels depends, in general, on the precise magnitude of the net reproductive rate. The addition of an Allee effect to an integrodifference equation may decrease the overall rate of spread. An Allee effect may also introduce a critical range; the population must surpass this spatial threshold in order to invade successfully. Fat—tailed kernels and Allee effects provide alternative explanations for the accelerating rates of spread observed for many invasions.

Mathematical and Theoretical Epidemiology and Ecology ModelsEvolution and Genetic DynamicsAnimal Ecology and Behavior StudiesAllee effectBiological dispersalPropagulePopulationKurtosisPropagule pressureEcologyBiologyEconometricsStatistical physics

Funding

  • National Science Foundation
  • Natural Sciences and Engineering Research Council of Canada
Citations
1,508
FWCI
18.39
field-weighted impact
References
0
Percentile
99%
vs. same field & year
Citations per year
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.