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Random forests as cumulative effects models: A case study of lakes and rivers in Muskoka, Canada.
Jones, F Chris; Plewes, Rachel; Murison, Lorna; MacDougall, Mark J; Sinclair, Sarah; Davies, Christie; Bailey, John L; Richardson, Murray; Gunn, John.
Afiliación
  • Jones FC; Ontario Ministry of Environment and Climate Change, Dorset Environmental Science Centre, 1026 Bellwood Acres Road, Dorset, P0A1E0, Canada. Electronic address: f.chris.jones@ontario.ca.
  • Plewes R; Carleton University, Department of Geography and Environmental Studies, 1125 Colonel By Drive, Ottawa, K1S 5B6, Canada. Electronic address: rplewes@ecoscapeltd.com.
  • Murison L; Credit Valley Conservation, 1255 Old Derry Road, Mississauga, L5N 6R4, Canada. Electronic address: lmurison@creditvalleyca.ca.
  • MacDougall MJ; River Labs, River Institute, 2 St Lawrence Drive, Cornwall, K6H 4Z1, Canada. Electronic address: m3macdou@uwaterloo.ca.
  • Sinclair S; Conservation Ontario, Dorset Environmental Science Centre, 1026 Bellwood Acres Road, Dorset, P0A1E0, Canada. Electronic address: obbnassistant@gmail.com.
  • Davies C; Ontario Ministry of Environment and Climate Change, Dorset Environmental Science Centre, 1026 Bellwood Acres Road, Dorset, Canada. Electronic address: christie.davies@ontario.ca.
  • Bailey JL; Ontario Ministry of Environment & Climate Change, Cooperative Freshwater Ecology Unit, Laurentian University, 935 Ramsey Lake Road, Sudbury, P3E 2C6, Canada. Electronic address: john.bailey@gov.yk.ca.
  • Richardson M; Carleton University, Department of Geography and Environmental Studies, B349 Loeb Building, Ottawa, ON, K1S 5B6, Canada. Electronic address: murray.richardson@carleton.ca.
  • Gunn J; Cooperative Freshwater Ecology Unit, Living With Lakes Centre, Laurentian University, 935 Ramsey Lake Road, Sudbury, P3E 2C6, Canada. Electronic address: jgunn@laurentian.ca.
J Environ Manage ; 201: 407-424, 2017 Oct 01.
Article en En | MEDLINE | ID: mdl-28704731
ABSTRACT
Cumulative effects assessment (CEA) - a type of environmental appraisal - lacks effective methods for modeling cumulative effects, evaluating indicators of ecosystem condition, and exploring the likely outcomes of development scenarios. Random forests are an extension of classification and regression trees, which model response variables by recursive partitioning. Random forests were used to model a series of candidate ecological indicators that described lakes and rivers from a case study watershed (The Muskoka River Watershed, Canada). Suitability of the candidate indicators for use in cumulative effects assessment and watershed monitoring was assessed according to how well they could be predicted from natural habitat features and how sensitive they were to human land-use. The best models explained 75% of the variation in a multivariate descriptor of lake benthic-macroinvertebrate community structure, and 76% of the variation in the conductivity of river water. Similar results were obtained by cross-validation. Several candidate indicators detected a simulated doubling of urban land-use in their catchments, and a few were able to detect a simulated doubling of agricultural land-use. The paper demonstrates that random forests can be used to describe the combined and singular effects of multiple stressors and natural environmental factors, and furthermore, that random forests can be used to evaluate the performance of monitoring indicators. The numerical methods presented are applicable to any ecosystem and indicator type, and therefore represent a step forward for CEA.
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Texto completo: 1 Bases de datos: MEDLINE Asunto principal: Lagos / Bosques / Monitoreo del Ambiente / Ríos Tipo de estudio: Clinical_trials / Prognostic_studies Límite: Humans País/Región como asunto: America do norte Idioma: En Revista: J Environ Manage Año: 2017 Tipo del documento: Article

Texto completo: 1 Bases de datos: MEDLINE Asunto principal: Lagos / Bosques / Monitoreo del Ambiente / Ríos Tipo de estudio: Clinical_trials / Prognostic_studies Límite: Humans País/Región como asunto: America do norte Idioma: En Revista: J Environ Manage Año: 2017 Tipo del documento: Article