DISENTANGLING THE STRUCTURE OF ECOLOGICAL BIPARTITE NETWORKS FROM OBSERVATION PROCESSES
成果类型:
Article
署名作者:
Anakok, Emre; Barbillon, Pierre; Fontaine, Colin; Thebault, Elisa
署名单位:
Universite Paris Saclay; AgroParisTech; INRAE; Museum National d'Histoire Naturelle (MNHN); Centre National de la Recherche Scientifique (CNRS); INRAE; Universite Paris-Est-Creteil-Val-de-Marne (UPEC); Universite Paris Cite; Centre National de la Recherche Scientifique (CNRS); CNRS - Institute of Ecology & Environment (INEE); Sorbonne Universite; Institut de Recherche pour le Developpement (IRD)
刊物名称:
ANNALS OF APPLIED STATISTICS
ISSN/ISSBN:
1932-6157
DOI:
10.1214/24-AOAS1965
发表日期:
2025
页码:
397-418
关键词:
sampling completeness
pollination networks
maximum-likelihood
Mixture Model
nestedness
abundance
摘要:
The structure of a bipartite interaction network can be described by providing a clustering for each of the two types of nodes. Such clusterings are outputted by fitting a latent block model (LBM) on an observed network that comes from a sampling of species interactions. However, the sampling is limited and possibly uneven. This may jeopardize the fit of the LBM and then the description of the structure of the network by detecting structures resulting from the sampling and not from actual underlying ecological phenomena. If the observed interaction network consists of a weighted bipartite network where the number of observed interactions between two species is available, the sampling efforts for all species can be estimated and used to correct the LBM fit. We propose to combine an observation model that accounts for sampling and an LBM for describing the structure of underlying possible ecological interactions. We develop an original inference procedure for this model, the efficiency of which is demonstrated in simulation studies. Its relevance and its practical interest are attested on a large dataset of plant-pollinator networks, as we observe structural change on most of the networks depending on whether observation processes are accounted for or not.
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