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首页> 外文期刊>Journal of Zhejiang University. Science, A >Mapping paddy rice with multi-date moderate-resolution imaging spectroradiometer (MODIS) data in China
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Mapping paddy rice with multi-date moderate-resolution imaging spectroradiometer (MODIS) data in China

机译:用多日期中间分辨率成像光谱映射绘制稻米,在中国中的数据

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摘要

The objective of this study was to obtain spatial distribution maps of paddy rice fields using multi-date moderate-resolution imaging spectroradiometer (MODIS) data in china. paddy rice fields were extracted by identifying the unique characteristic of high soil moisture in the flooding and transplanting period with improved algorithms based on rice growth calendar regionalization. The characteristic could be reflected by the enhanced vegetation index (EVI) and the land surface water index (LSWI) derived from MODIS sensor data. Algorithms for single, early, and late rice identification were obtained from selected typical test sites. The algorithms could not only separate early rice and late rice planted in the same fields, but also reduce the uncertainties. The areal accuracy of the MODIS-derived results was validated by comparison with agricultural statistics, and the spatial matching was examined by ETM+ (enhanced thematic mapper plus) images in a test region. Major factors that might cause errors, such as the coarse spatial resolution and noises in the MODIS data, were discussed. Although not suitable for monitoring the inter-annual variations due to some inevitable factors, the MODIS-derived results were useful for obtaining spatial distribution maps of paddy rice on a large scale, and they might provide reference for further studies.
机译:本研究的目的是利用中国多日期中分辨率成像光谱仪(MODIS)数据获得水稻田的空间分布图。基于水稻生长日历区域化的改进算法,通过识别洪水和移栽期高土壤水分的独特特征来提取水稻领域。特征可以由增强的植被指数(EVI)和来自MODIS传感器数据的陆地表面水指数(LSWI)反射。从选定的典型测试部位获得单一,早期和晚稻鉴定的算法。该算法不仅可以将早稻和晚稻种植在同一领域,而且还减少了不确定性。通过与农业统计进行比较验证了Modis导出结果的面积准确性,并且在测试区域中通过ETM +(增强专题映射Plus)图像检查空间匹配。讨论了可能导致错误的主要因素,例如MODIS数据中的粗糙空间分辨率和噪声。虽然不适合监测由于一些不可避免的因素引起的年度变化,但是Modis衍生的结果对于在大规模中获得水稻的空间分布图,并且它们可能为进一步研究提供参考。

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