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首页> 外文期刊>Remote Sensing of Environment: An Interdisciplinary Journal >A data-mining approach to associating MISR smoke plume heights with MODIS fire measurements
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A data-mining approach to associating MISR smoke plume heights with MODIS fire measurements

机译:一种将MISR烟羽高度与MODIS火灾测量值相关联的数据挖掘方法

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摘要

Satellites provide unique perspectives on aerosol global and regional spatial and temporal distributions, and offer compelling evidence that visibility and air quality are affected by particulate matter transported over long distances. The heights at which emissions are injected into the atmosphere are major factors governing downwind dispersal. In order to better understand the environmental factors determining injection heights of smoke plumes from wildfires, we have developed a prototype system for automatically searching through several years of MISR and MODIS data to locate fires and the associated smoke plumes and to retrieve injection heights and other relevant measurements from them. We are refining this system and assembling a statistical database, aimed at understanding how injection height relates to the fire severity and local weather conditions. In this paper we focus on our working proof-of-concept system that demonstrates how machine-leaming and data mining methods aid in processing of massive volumes of satellite data. Automated algorithms for distinguishing smoke from clouds and other aerosols, identifying plumes, and extracting height data are described. Preliminary results are presented from application to MISR and MODIS data collected over North America during the summer of 2004. (c) 2006 Elsevier Inc. All rights reserved.
机译:卫星为气溶胶的全球和区域时空分布提供了独特的视角,并提供了令人信服的证据,说明可见性和空气质量受到长距离运输的颗粒物的影响。排放物被注入大气的高度是控制顺风扩散的主要因素。为了更好地了解确定野火烟雾喷射高度的环境因素,我们开发了一个原型系统,可自动搜索几年的MISR和MODIS数据,以查找火势和相关的烟雾喷射,并检索喷射高度和其他相关信息从他们的测量。我们正在完善此系统并组装一个统计数据库,旨在了解喷油高度与火灾严重程度和当地天气状况的关系。在本文中,我们专注于概念验证系统,该系统演示了机器学习和数据挖掘方法如何帮助处理大量卫星数据。描述了自动算法,用于区分云和其他气溶胶中的烟雾,识别羽流以及提取高度数据。初步结果显示了从2004年夏季在北美收集的MISR和MODIS数据的应用。(c)2006 Elsevier Inc.保留所有权利。

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