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Tropical forest biomass density estimation using JERS-1 SAR: Seasonal variation, confidence limits, and application to image mosaics

机译:使用JERS-1 SAR估算热带森林生物量密度:季节变化,置信度限制及其在图像镶嵌中的应用

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This study describes the development of a semiempirical model for the retrieval of above-ground biomass density of regenerating tropical forest using JERS-1 Synthetic Aperture Radar (SAR). The magnitude and variability of the response of the L-band SAR to above-ground biomass density was quantified using field data collected at Tapajos in central Amazonia and imagery from a series of dates. A simple backscatter model was fitted to this response and validated using image and field data acquired independently at Manaus, 500 km to the west of Tapajos. The sources of variability in biomass density and SAR back-scatter were investigated so as to determine confidence limits for the subsequent retrieval of biomass density using the model. This analysis suggested that only three broad classes of regenerating forest biomass density may be positively distinguished. While the backscatter appears to saturate at around 60 tonnes per hectare, the biomass limit for retrieval purposes which is tolerant to both speckle and image texture is only 31 tonnes per hectare. The spatial distribution of biomass density in central Amazonia was estimated by applying the model to a mosaic of 90 JERS-1 images. A favorable comparison of this distribution to a map of regeneration derived from NOAA AVHRR imagery suggested that L-band SAR will provide a useful method of monitoring tropical forests on a regional scale. (C) Elsevier Science Inc., 1998. [References: 26]
机译:这项研究描述了使用JERS-1合成孔径雷达(SAR)检索再生热带森林地上生物量密度的半经验模型的开发。 L波段SAR对地上生物量密度的响应的大小和变异性是使用在亚马逊河中部的Tapajos收集的现场数据和一系列日期的图像进行量化的。一个简单的反向散射模型适合该响应,并使用独立于塔帕霍斯以西500公里的马瑙斯的图像和现场数据进行了验证。研究了生物量密度和SAR背向散射的变异性来源,以确定随后使用该模型检索生物量密度的置信限。这项分析表明,只有三大类的再生森林生物量密度可以得到肯定的区分。虽然反向散射似乎在每公顷60吨左右达到饱和,但对斑点和图像纹理均能容忍的用于检索目的的生物量限制仅为每公顷31吨。通过将模型应用于90个JERS-1图像的镶嵌图,估算了亚马逊河中部生物量密度的空间分布。将该分布与从NOAA AVHRR影像获得的再生图进行有利的比较表明,L波段SAR将提供一种在区域范围内监测热带森林的有用方法。 (C)Elsevier Science Inc.,1998年。[参考:26]

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