首页> 外文会议>2011 IEEE International Geoscience Remote Sensing Symposium >Evaluation of paddy yield and protein estimation methods based on various vegetation indices, NDSI and PLS using an airborne hyperspectral sensor AISA in Shonai Plain, Yamagata, Japan
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Evaluation of paddy yield and protein estimation methods based on various vegetation indices, NDSI and PLS using an airborne hyperspectral sensor AISA in Shonai Plain, Yamagata, Japan

机译:基于机载高光谱传感器AISA的日本山形庄内平原基于各种植被指数,NDSI和PLS的水稻产量和蛋白质估算方法的评估

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This paper describes to evaluate rice yield and protein estimation methods based on various vegetation indices (VIs), NDSI and PLS using an airborne hyperspectral sensor AISA in Shonai plane, northeast Japan. In several developing stages, which are the tillering stage (middle June), the maximum tiller number stage (early July) and the dough ripe stage (late August), PLS has stable and high correlation for all stages. NDSI shows several discriminative wavelengths to estimate rice conditions. VIs slightly estimated those situations in the dough ripe stage. In this result, a hybrid method of PLS and NDSI, which is similar to iPLS, suggests the best estimation method for rice yield and protein.
机译:本文描述了使用机载高光谱传感器AISA在日本东北的庄内市,基于各种植被指数(VIs),NDSI和PLS评估稻米产量和蛋白质估算方法的方法。在分developing阶段(6月中旬),最大分till数阶段(7月初)和面团成熟阶段(8月下旬)的几个发展阶段中,PLS在所有阶段均具有稳定和高度相关性。 NDSI显示了几种判别波长以估算稻米状况。 VI稍微估计了面团成熟阶段的情况。在此结果中,类似于iPLS的PLS和NDSI的混合方法提出了水稻产量和蛋白质的最佳估算方法。

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