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______Mapping Pacific Northwest Riparian Areas: Measuring Current Condition And Prioritizing For Climate Change Adaptation
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These layers were produced as part of the WGA/LCC Riparian Mapping Project, which identified riparian location, condition, and climate adaptation potential, for the Pacific Northwest, USA. These layers identify potential riparian areas (i.e., near-stream valley bottoms; Theobald et al. 2013) that span large temperature gradients, have high canopy cover, low solar insolation, and low levels of human modification – characteristics expected to facilitate climate-induced species range shifts and provide micro-climatic refugia from warming. Detailed description of the project rationale, methods, and resulting layers may be found in Krosby et al. (2014). References: Krosby, M., Norheim, R., Theobald, D. M., and B. H....
These layers were produced as part of the WGA/LCC Riparian Mapping Project, which identified riparian location, condition, and climate adaptation potential, for the Pacific Northwest, USA. These layers identify potential riparian areas (i.e., near-stream valley bottoms; Theobald et al. 2013) that span large temperature gradients, have high canopy cover, low solar insolation, and low levels of human modification – characteristics expected to facilitate climate-induced species range shifts and provide micro-climatic refugia from warming. Detailed description of the project rationale, methods, and resulting layers may be found in Krosby et al. (2014). References: Krosby, M., Norheim, R., Theobald, D. M., and B. H....
These layers were produced as part of the WGA/LCC Riparian Mapping Project, which identified riparian location, condition, and climate adaptation potential, for the Pacific Northwest, USA. These layers identify potential riparian areas (i.e., near-stream valley bottoms; Theobald et al. 2013) that span large temperature gradients, have high canopy cover, low solar insolation, and low levels of human modification – characteristics expected to facilitate climate-induced species range shifts and provide micro-climatic refugia from warming. Detailed description of the project rationale, methods, and resulting layers may be found in Krosby et al. (2014). References: Krosby, M., Norheim, R., Theobald, D. M., and B. H....
Protecting and restoring ecological connectivity is a leading climate adaptation strategy forbiodiversity conservation (Heller & Zavaleta 2009, Lawler 2009), because species are expectedto have difficulty tracking shifting climates across fragmented landscapes (Thomas et al. 2004).Connectivity conservation is thus a primary focus of numerous large-scale climate adaptationinitiatives (e.g., U.S. Department of Interior’s Landscape Conservation Cooperatives), and a corestrategy of many federal climate adaptation plans (NPS 2010, USFS 2011, USFWS 2010). Thishas led to a growing need for approaches that identify priority areas for connectivityconservation in a changing climate.Riparian areas have been identified as key...
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These layers were produced as part of the WGA/LCC Riparian Mapping Project, which identified riparian location, condition, and climate adaptation potential, for the Pacific Northwest, USA. These layers identify potential riparian areas (i.e., near-stream valley bottoms; Theobald et al. 2013) that span large temperature gradients, have high canopy cover, low solar insolation, and low levels of human modification – characteristics expected to facilitate climate-induced species range shifts and provide micro-climatic refugia from warming. Detailed description of the project rationale, methods, and resulting layers may be found in Krosby et al. (2014). References: Krosby, M., Norheim, R., Theobald, D. M., and B. H....
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Webinar for by Meade Krosby, UW, July 24, 2014Protecting and restoring ecological connectivity is a leading climate adaptation strategy forbiodiversity conservation (Heller & Zavaleta 2009, Lawler 2009), because species are expectedto have difficulty tracking shifting climates across fragmented landscapes (Thomas et al. 2004).Connectivity conservation is thus a primary focus of numerous large-scale climate adaptationinitiatives (e.g., U.S. Department of Interior’s Landscape Conservation Cooperatives), and a corestrategy of many federal climate adaptation plans (NPS 2010, USFS 2011, USFWS 2010). Thishas led to a growing need for approaches that identify priority areas for connectivityconservation in a changing climate.Riparian...
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Protecting and restoring ecological connectivity is a leading climate adaptation strategy forbiodiversity conservation (Heller & Zavaleta 2009, Lawler 2009), because species are expectedto have difficulty tracking shifting climates across fragmented landscapes (Thomas et al. 2004).Connectivity conservation is thus a primary focus of numerous large-scale climate adaptationinitiatives (e.g., U.S. Department of Interior’s Landscape Conservation Cooperatives), and a corestrategy of many federal climate adaptation plans (NPS 2010, USFS 2011, USFWS 2010). Thishas led to a growing need for approaches that identify priority areas for connectivityconservation in a changing climate.Riparian areas have been identified as key...
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This includes the following data sets:Pacific Northwest Riparian Climate Corridors: scores attributed to stream lines Pacific Northwest Riparian Climate Corridors: HUC6 Scores by Omernik Ecoregions Pacific Northwest Riparian Climate Corridors: scores attributed to HUC-6 watersheds Potential Riparian Areas in the Pacific Northwest Riparian Mapping Project - Index averaged to HUC 6Protecting and restoring ecological connectivity is a leading climate adaptation strategy forbiodiversity conservation (Heller & Zavaleta 2009, Lawler 2009), because species are expectedto have difficulty tracking shifting climates across fragmented landscapes (Thomas et al. 2004).Connectivity conservation is thus a primary focus of numerous...
These layers were produced as part of the WGA/LCC Riparian Mapping Project, which identified riparian location, condition, and climate adaptation potential, for the Pacific Northwest, USA. These layers identify potential riparian areas (i.e., near-stream valley bottoms; Theobald et al. 2013) that span large temperature gradients, have high canopy cover, low solar insolation, and low levels of human modification – characteristics expected to facilitate climate-induced species range shifts and provide micro-climatic refugia from warming. Detailed description of the project rationale, methods, and resulting layers may be found in Krosby et al. (2014). References: Krosby, M., Norheim, R., Theobald, D. M., and B. H....


    map background search result map search result map Final Report:  Riparian Climate Corridors:Identifying Priority Areas for Conservation in a Changing Climate Spatial Datasets:  Riparian Climate Corridors:Identifying Priority Areas for Conservation in a Changing Climate Pacific Northwest Riparian Climate Corridors: HUC6 Scores by Omernik Ecoregions Webinar:  Riparian Climate Corridors:Identifying Priority Areas for Conservation in a Changing Climate Final Report:  Riparian Climate Corridors:Identifying Priority Areas for Conservation in a Changing Climate Spatial Datasets:  Riparian Climate Corridors:Identifying Priority Areas for Conservation in a Changing Climate Webinar:  Riparian Climate Corridors:Identifying Priority Areas for Conservation in a Changing Climate Pacific Northwest Riparian Climate Corridors: HUC6 Scores by Omernik Ecoregions