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High-severity fire: evaluating its key drivers and mapping its probability across western US forests
by
Jolly, W Matt
, Panunto, Matthew H
, Dobrowski, Solomon Z
, Dillon, Gregory K
, Parks, Sean A
, Holsinger, Lisa M
in
burn severity
/ climate
/ Extreme weather
/ fire severity
/ Forest & brush fires
/ fuel
/ Fuels
/ Heterogeneity
/ Land management
/ Landscape
/ Regression analysis
/ Regression models
/ Satellite imagery
/ Statistical analysis
/ Topography
/ Vegetation type
/ Weather
/ Wildfires
/ wildland fire
2018
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High-severity fire: evaluating its key drivers and mapping its probability across western US forests
by
Jolly, W Matt
, Panunto, Matthew H
, Dobrowski, Solomon Z
, Dillon, Gregory K
, Parks, Sean A
, Holsinger, Lisa M
in
burn severity
/ climate
/ Extreme weather
/ fire severity
/ Forest & brush fires
/ fuel
/ Fuels
/ Heterogeneity
/ Land management
/ Landscape
/ Regression analysis
/ Regression models
/ Satellite imagery
/ Statistical analysis
/ Topography
/ Vegetation type
/ Weather
/ Wildfires
/ wildland fire
2018
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While trying to remove the title from your shelf something went wrong :( Kindly try again later!
Do you wish to request the book?
High-severity fire: evaluating its key drivers and mapping its probability across western US forests
by
Jolly, W Matt
, Panunto, Matthew H
, Dobrowski, Solomon Z
, Dillon, Gregory K
, Parks, Sean A
, Holsinger, Lisa M
in
burn severity
/ climate
/ Extreme weather
/ fire severity
/ Forest & brush fires
/ fuel
/ Fuels
/ Heterogeneity
/ Land management
/ Landscape
/ Regression analysis
/ Regression models
/ Satellite imagery
/ Statistical analysis
/ Topography
/ Vegetation type
/ Weather
/ Wildfires
/ wildland fire
2018
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High-severity fire: evaluating its key drivers and mapping its probability across western US forests
Journal Article
High-severity fire: evaluating its key drivers and mapping its probability across western US forests
2018
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Overview
Wildland fire is a critical process in forests of the western United States (US). Variation in fire behavior, which is heavily influenced by fuel loading, terrain, weather, and vegetation type, leads to heterogeneity in fire severity across landscapes. The relative influence of these factors in driving fire severity, however, is poorly understood. Here, we explore the drivers of high-severity fire for forested ecoregions in the western US over the period 2002-2015. Fire severity was quantified using a satellite-inferred index of severity, the relativized burn ratio. For each ecoregion, we used boosted regression trees to model high-severity fire as a function of live fuel, topography, climate, and fire weather. We found that live fuel, on average, was the most important factor driving high-severity fire among ecoregions (average relative influence = 53.1%) and was the most important factor in 14 of 19 ecoregions. Fire weather was the second most important factor among ecoregions (average relative influence = 22.9%) and was the most important factor in five ecoregions. Climate (13.7%) and topography (10.3%) were less influential. We also predicted the probability of high-severity fire, were a fire to occur, using recent (2016) satellite imagery to characterize live fuel for a subset of ecoregions in which the model skill was deemed acceptable (n = 13). These 'wall-to-wall' gridded ecoregional maps provide relevant and up-to-date information for scientists and managers who are tasked with managing fuel and wildland fire. Lastly, we provide an example of the predicted likelihood of high-severity fire under moderate and extreme fire weather before and after fuel reduction treatments, thereby demonstrating how our framework and model predictions can potentially serve as a performance metric for land management agencies tasked with reducing hazardous fuel across large landscapes.
Publisher
IOP Publishing
Subject
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