Organismal fecundity (F) and its relationship with body size (BS) are key factors in predicting species distribution under current and future scenarios of global change. A functional trait-based dynamic energy budget (FT-DEB) is proposed as a mechanistic approach to predict the variation of F and BS as function of environmental correlates using two marine bivalves as model species (Mytilus galloprovincialis and Brachidontes pharaonis). Validation proof of model skill (i.e., degree of correspondence between model predictions and field observations) and stationarity (i.e., ability of a model generated from data collected at one place/time to predict processes at another place/time) was provided to test model performance in predicting the biva...
Climate change exposes benthic species populations in coastal ecosystems to a combination of differe...
Dynamic Energy Budget (DEB) models are used for describing the flow of energy through organisms. The...
To predict the response of the European flat oyster (Ostrea edulis) and Pacific cupped oyster (Crass...
Organismal fecundity (F) and its relationship with body size (BS) are key factors in predicting spec...
Mechanistic models such as those based on dynamic energy budget (DEB) theory are emergent ecomechani...
In this paper, we apply the Dynamic Energy Budget (DEB) theory to bivalve species (1) to provide bas...
Aim We used a coupled biophysical ecology (BE)-physiological mechanistic modelling approach based o...
For species in the deep sea, there is a knowledge gap related to their functional traits at all stag...
Individual-based models are increasingly used by marine ecologists to predict species responses to e...
Dynamic Energy Budget (DEB) models are used for describing the flow of energy through organisms. The...
Required assimilated energy to support observed growth was reconstructed for four common bivalve spe...
Organismal metabolic rates reflect the interaction of environmental and physiological factors. Thus,...
Climate change exposes benthic species populations in coastal ecosystems to a combination of differe...
Dynamic Energy Budget (DEB) models are used for describing the flow of energy through organisms. The...
To predict the response of the European flat oyster (Ostrea edulis) and Pacific cupped oyster (Crass...
Organismal fecundity (F) and its relationship with body size (BS) are key factors in predicting spec...
Mechanistic models such as those based on dynamic energy budget (DEB) theory are emergent ecomechani...
In this paper, we apply the Dynamic Energy Budget (DEB) theory to bivalve species (1) to provide bas...
Aim We used a coupled biophysical ecology (BE)-physiological mechanistic modelling approach based o...
For species in the deep sea, there is a knowledge gap related to their functional traits at all stag...
Individual-based models are increasingly used by marine ecologists to predict species responses to e...
Dynamic Energy Budget (DEB) models are used for describing the flow of energy through organisms. The...
Required assimilated energy to support observed growth was reconstructed for four common bivalve spe...
Organismal metabolic rates reflect the interaction of environmental and physiological factors. Thus,...
Climate change exposes benthic species populations in coastal ecosystems to a combination of differe...
Dynamic Energy Budget (DEB) models are used for describing the flow of energy through organisms. The...
To predict the response of the European flat oyster (Ostrea edulis) and Pacific cupped oyster (Crass...