Improving methods in gap ecology: Revisiting size and shape distributions using a model selection approach


Autoria(s): De Lima, Renato Augusto F.; Prado, Paulo Inácio; Martini, Adriana Maria Z.; Fonseca, Leandro J.; Gandolfi, Sérgius; Rodrigues, Ricardo R.
Contribuinte(s)

Universidade Estadual Paulista (UNESP)

Data(s)

27/05/2014

27/05/2014

01/05/2013

Resumo

Questions: We assess gap size and shape distributions, two important descriptors of the forest disturbance regime, by asking: which statistical model best describes gap size distribution; can simple geometric forms adequately describe gap shape; does gap size or shape vary with forest type, gap age or the method used for gap delimitation; and how similar are the studied forests and other tropical and temperate forests? Location: Southeastern Atlantic Forest, Brazil. Methods: Analysing over 150 gaps in two distinct forest types (seasonal and rain forests), a model selection framework was used to select appropriate probability distributions and functions to describe gap size and gap shape. The first was described using univariate probability distributions, whereas the latter was assessed based on the gap area-perimeter relationship. Comparisons of gap size and shape between sites, as well as size and age classes were then made based on the likelihood of models having different assumptions for the values of their parameters. Results: The log-normal distribution was the best descriptor of gap size distribution, independently of the forest type or gap delimitation method. Because gaps became more irregular as they increased in size, all geometric forms (triangle, rectangle and ellipse) were poor descriptors of gap shape. Only when small and large gaps (> 100 or 400m2 depending on the delimitation method) were treated separately did the rectangle and isosceles triangle become accurate predictors of gap shape. Ellipsoidal shapes were poor descriptors. At both sites, gaps were at least 50% longer than they were wide, a finding with important implications for gap microclimate (e.g. light entrance regime) and, consequently, for gap regeneration. Conclusions: In addition to more appropriate descriptions of gap size and shape, the model selection framework used here efficiently provided a means by which to compare the patterns of two different types of forest. With this framework we were able to recommend the log-normal parameters μ and σ for future comparisons of gap size distribution, and to propose possible mechanisms related to random rates of gap expansion and closure. We also showed that gap shape varied highly and that no single geometric form was able to predict the shape of all gaps, the ellipse in particular should no longer be used as a standard gap shape. © 2012 International Association for Vegetation Science.

Formato

484-495

Identificador

http://dx.doi.org/10.1111/j.1654-1103.2012.01483.x

Journal of Vegetation Science, v. 24, n. 3, p. 484-495, 2013.

1100-9233

1654-1103

http://hdl.handle.net/11449/75261

10.1111/j.1654-1103.2012.01483.x

WOS:000317018300009

2-s2.0-84875814365

Idioma(s)

eng

Relação

Journal of Vegetation Science

Direitos

closedAccess

Palavras-Chave #Atlantic forest #Canopy gaps #Disturbance regime #Log-normal distribution #Maximum likelihood #canopy gap #disturbance #ellipse #gap dynamics #maximum likelihood analysis #microclimate #probability #rainforest #size distribution #temperate forest #tropical forest #Atlantic Forest #Brazil
Tipo

info:eu-repo/semantics/article