Title of article :
Applications of machine learning to ecological modelling
Author/Authors :
Recknagel، نويسنده , , Friedrich، نويسنده ,
Pages :
8
From page :
303
To page :
310
Abstract :
The paper provides a summary of paper presentations at the 2nd International Conference on Applications of Machine Learning to Ecological Modelling and a preview of forthcoming developments in this area. Artificial neural networks were demonstrated to be very useful for nonlinear ordination and visualization of ecological data by Kohonen networks, and ecological time-series modelling by recurrent networks. Genetic algorithms proved to be very innovative for hybridizing deductive models, and evolving predictive rules, process equations and parameters. Newly emerging adaptive agents provide a novel framework for the discovery and forecasting of emergent ecosystem structures and behaviours in response to environmental changes.
Keywords :
Machine Learning , Artificial neural network , genetic algorithm , Multivariate statistics , knowledge discovery , Adaptive agents , Model hybridization , Time-series modelling , ecological modelling
Journal title :
Astroparticle Physics
Record number :
2036816
Link To Document :
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