Literature DB >> 21830699

Inferential ecosystem models, from network data to prediction.

James S Clark1, Pankaj Agarwal, David M Bell, Paul G Flikkema, Alan Gelfand, Xuanlong Nguyen, Eric Ward, Jun Yang.   

Abstract

Recent developments suggest that predictive modeling could begin to play a larger role not only for data analysis, but also for data collection. We address the example of efficient wireless sensor networks, where inferential ecosystem models can be used to weigh the value of an observation against the cost of data collection. Transmission costs make observations "expensive"; networks will typically be deployed in remote locations without access to infrastructure (e.g., power). The capacity to sample intensively makes sensor networks valuable, but high-frequency data are informative only at specific times and locations. Sampling intervals will range from meters and seconds to landscapes and years, depending on the process, the current states of the system, the uncertainty about those states, and the perceived potential for rapid change. Given that intensive sampling is sometimes critical, but more often wasteful, how do we develop tools to control the measurement and transmission processes? We address the potential of data collection controlled and/or supplemented by inferential ecosystem models. In a given model, the value of an observation can be evaluated in terms of its contribution to estimates of state variables and important parameters. There will be more than one model applied to network data that will include as state variables water, carbon, energy balance, biogeochemistry, tree ecophysiology, and forest demographic processes. The value of an observation will depend on the application. Inference is needed to weigh the contributions against transmission cost. Network control must be dynamic and driven by models capable of learning about both the environment and the network. We discuss application of Bayesian inference to model data from a developing sensor network as a basis for controlling the measurement and transmission processes. Our examples involve soil moisture and sap flux, but we discuss broader application of the approach, including its implications for network design.

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Year:  2011        PMID: 21830699     DOI: 10.1890/09-1212.1

Source DB:  PubMed          Journal:  Ecol Appl        ISSN: 1051-0761            Impact factor:   4.657


  3 in total

Review 1.  Current models broadly neglect specific needs of biodiversity conservation in protected areas under climate change.

Authors:  Mungla Sieck; Pierre L Ibisch; Kirk A Moloney; Florian Jeltsch
Journal:  BMC Ecol       Date:  2011-05-03       Impact factor: 2.964

2.  Statistical ecology comes of age.

Authors:  Olivier Gimenez; Stephen T Buckland; Byron J T Morgan; Nicolas Bez; Sophie Bertrand; Rémi Choquet; Stéphane Dray; Marie-Pierre Etienne; Rachel Fewster; Frédéric Gosselin; Bastien Mérigot; Pascal Monestiez; Juan M Morales; Frédéric Mortier; François Munoz; Otso Ovaskainen; Sandrine Pavoine; Roger Pradel; Frank M Schurr; Len Thomas; Wilfried Thuiller; Verena Trenkel; Perry de Valpine; Eric Rexstad
Journal:  Biol Lett       Date:  2014-12       Impact factor: 3.703

3.  Comparison of water-use characteristics of tropical tree saplings with implications for forest restoration.

Authors:  Tushar Andriyas; Nisa Leksungnoen; Pantana Tor-Ngern
Journal:  Sci Rep       Date:  2021-01-18       Impact factor: 4.379

  3 in total

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