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Detection of forest degradation caused by fires in Amazonia from time series of MODIS fraction images

机译:从MODIS分数图像的时间序列检测亚马逊火灾引起的森林退化。

摘要

A new method is presented to detect and assess the extent of burned forests in a tropical ecosystem. Our study area is located in Mato Grosso state southern flank of the Brazilian Amazon region. MODIS images are used over the dry season of year 2010. The proposed method is based on (i) linear spectral mixing model applied to MODIS imagery to derive soil and shade fraction images and (ii) image segmentation and classification applied to a multi-temporal dataset of MODIS-derived images. In a first step, deforested areas are identified and mapped from the soil fraction images while burned areas are identified and mapped from the shade fraction images. Then, burned forest areas are mapped by combining a forest/non forest mask with the resulting burned area map. Our results show that 14,220 km2 of forests were degraded by fire in Mato Grosso during year 2010. Our approach can be potentially used operationally for detecting forest degradation due to fires. The proposed method can also be applied to time series of medium and high spatial resolution images for regional and local analysis.
机译:提出了一种新的方法来检测和评估热带生态系统中森林被烧毁的程度。我们的研究区域位于巴西亚马逊地区马托格罗索州的南部侧面。 MODIS图像用于2010年的干旱季节。所提出的方法基于(i)应用于MODIS图像的线性光谱混合模型以导出土壤和阴影部分图像,以及(ii)应用于多时相的图像分割和分类MODIS衍生图像的数据集。第一步,从土壤分数图像中识别并绘制森林砍伐区域,而从阴影分数图像中识别并绘制燃烧区域。然后,通过将森林/非森林遮罩与生成的燃烧区域图相结合来绘制燃烧的森林区域。我们的结果表明,在2010年,马托格罗索州有14,220 km2的森林因大火而退化。我们的方法可潜在地用于检测由于大火引起的森林退化。所提出的方法还可以应用于中等和高分辨率空间图像的时间序列,以进行区域和局部分析。

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