Question Indices of functional diversity have been seen as the key for integrating information on species richness with measures that focus on those components of community composition related to ecosystem functioning. For comparing species richness among habitats on an equal-effort basis, so-called sample-based rarefaction curves may be used. Given a study area that is sampled for species presence and absence in N plots, sample-based rarefaction generates the expected number of accumulated species as the number of sampled plots increases from 1 to N. Accordingly, the question for this study is: can we construct a 'functional rarefaction curve' that summarizes the expected functional dissimilarity between species when n plots are drawn at random from a larger pool of N plots? Methods In this paper, we propose a parametric measure of functional diversity that is obtained by combining sample-based rarefaction techniques that are usually applied to species richness with Rao's quadratic diversity. For a given set of N presence/absence plots, the resulting measure summarizes the expected functional dissimilarity at an increasingly larger cumulative number of plots n (n < N). Results and Conclusions Due to its parametric nature, the proposed measure is progressively more sensitive to rare species with increasing plot number, thus rendering this measure adequate for comparing the functional diversity of species assemblages that have been sampled with variable effort.

Incorporating functional dissimilarities into sample-based rarefaction curves: from taxon resampling to functional resampling / Ricotta, Carlo; Burrascano, Sabina; Blasi, Carlo. - In: JOURNAL OF VEGETATION SCIENCE. - ISSN 1100-9233. - 21:2(2010), pp. 280-286. [10.1111/j.1654-1103.2009.01142.x]

Incorporating functional dissimilarities into sample-based rarefaction curves: from taxon resampling to functional resampling

RICOTTA, Carlo;BURRASCANO, SABINA;BLASI, Carlo
2010

Abstract

Question Indices of functional diversity have been seen as the key for integrating information on species richness with measures that focus on those components of community composition related to ecosystem functioning. For comparing species richness among habitats on an equal-effort basis, so-called sample-based rarefaction curves may be used. Given a study area that is sampled for species presence and absence in N plots, sample-based rarefaction generates the expected number of accumulated species as the number of sampled plots increases from 1 to N. Accordingly, the question for this study is: can we construct a 'functional rarefaction curve' that summarizes the expected functional dissimilarity between species when n plots are drawn at random from a larger pool of N plots? Methods In this paper, we propose a parametric measure of functional diversity that is obtained by combining sample-based rarefaction techniques that are usually applied to species richness with Rao's quadratic diversity. For a given set of N presence/absence plots, the resulting measure summarizes the expected functional dissimilarity at an increasingly larger cumulative number of plots n (n < N). Results and Conclusions Due to its parametric nature, the proposed measure is progressively more sensitive to rare species with increasing plot number, thus rendering this measure adequate for comparing the functional diversity of species assemblages that have been sampled with variable effort.
2010
expected number of species; "parametric diversity"; parametric diversity; functional diversity; pairwise species dissimilarities; "functional diversity"; rao's quadratic diversity; "pairwise species dissimilarities"; "rao's quadratic diversity"; "expected number of species"
01 Pubblicazione su rivista::01a Articolo in rivista
Incorporating functional dissimilarities into sample-based rarefaction curves: from taxon resampling to functional resampling / Ricotta, Carlo; Burrascano, Sabina; Blasi, Carlo. - In: JOURNAL OF VEGETATION SCIENCE. - ISSN 1100-9233. - 21:2(2010), pp. 280-286. [10.1111/j.1654-1103.2009.01142.x]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/365263
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