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8篇 您的检索式:作者名="Quintano"
    题名 作者 年代 出处 被引量
1The shadow economy beyond European public governance显示文摘QUINTANO C MAZZOCCHI P 2013Economic Systems2013,37,4:1
2Mapping Burn ed Areas in Mediterranean Countries Using Spectral Mixture Analysis from a Uni-temporal Perspective 显示文摘Quintano C Fernandez A Fernandez O 2006International Journal of Remote Sensing2006,27,4:1
3Managing Dialog in a Natural Language Querying System 显示文摘Luis Quintano Irene Rodrigues 2003Lecture Notes in Computer Science2003,,:1
4Factors associated with depression and severe depression in patients with COPD 显示文摘Miravitlles M Molina J Quintano JA 2014Respir Med2014,,:1
5Spectral unmixing显示文摘Carmen Quintano Alfonso Fernández-Manso YosioE. Shimabukuro Gabriel Pereira 2012International Journal of Remote Sensing2012,,17:1
6Multiple Endmember Spectral Mixture Analysis (MESMA) to map burn severity levels from Landsat images in Mediterranean countries显示文摘Carmen Quintano Alfonso Fernández-Manso Dar A. Roberts 2013Remote Sensing of Environment2013,,:1
7Chronic obstructive pulmonary disease: Morbimortality and healtheare burden显示文摘G6mez SOenz JT1 Quintano Jim6nez JA2 Hidalgo Requena A 2014Semergen2014,40,4:1
8Pre-fire aboveground biomass, estimated from LiDAR, spectral and field inventory data, as a major driver of burn severity in maritime pine (Pinus pinaster) ecosystems显示文摘Background:The characterization of surface and canopy fuel loadings in fire-prone pine ecosystems is critical for understanding fire behavior and anticipating the most harmful ecological effects of fire.Nevertheless,the joint consideration of both overstory and understory strata in burn severity assessments is often dismissed.The aim of this work was to assess the role of total,overstory and understory pre-fire aboveground biomass(AGB),estimated by means of airborne Light Detection and Ranging(LiDAR)and Landsat data,as drivers of burn severity in a megafire occurred in a pine ecosystem dominated by Pinus pinaster Ait.in the western Mediterranean Basin.Results:Total and overstory AGB were more accurately estimated(R^(2) equal to 0.72 and 0.68,respectively)from LiDAR and spectral data than understory AGB(R^(2)=0.26).Density and height percentile LiDAR metrics for several strata were found to be important predictors of AGB.Burn severity responded markedly and non-linearly to total(R^(2)=0.60)and overstory(R ^(2)=0.53)AGB,whereas the relationship with understory AGB was weaker(R ^(2)=0.21).Nevertheless,the overstory plus understory AGB contribution led to the highest ability to predict burn severity(RMSE=122.46 in dNBR scale),instead of the joint consideration as total AGB(RMSE=158.41).Conclusions:This study novelty evaluated the potential of pre-fire AGB,as a vegetation biophysical property derived from LiDAR,spectral and field plot inventory data,for predicting burn severity,separating the contri-bution of the fuel loads in the understory and overstory strata in Pinus pinaster stands.The evidenced relationships between burn severity and pre-fire AGB distribution in Pinus pinaster stands would allow the implementation of threshold criteria to support decision making in fuel treatments designed to minimize crown fire hazard.Jose Manuel Fernandez-Guisuraga Susana Suarez-Seoane Paulo MFernandes Victor Fernandez-Garcia Alfonso Fernandez-Manso Carmen Quintano Leonor Calvo 2022Forest Ecosystems2022,9,2:0
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