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首页> 外文期刊>Remote Sensing >Complementarity of Two Rice Mapping Approaches: Characterizing Strata Mapped by Hypertemporal MODIS and Rice Paddy Identification Using Multitemporal SAR
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Complementarity of Two Rice Mapping Approaches: Characterizing Strata Mapped by Hypertemporal MODIS and Rice Paddy Identification Using Multitemporal SAR

机译:两种水稻作图方法的互补性:表征超时态MODIS映射的地层和使用多时相SAR识别水稻

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Different rice crop information can be derived from different remote sensing sources to provide information for decision making and policies related to agricultural production and food security. The objective of this study is to generate complementary and comprehensive rice crop information from hypertemporal optical and multitemporal high-resolution SAR imagery. We demonstrate the use of MODIS data for rice-based system characterization and X-band SAR data from TerraSAR-X and CosmoSkyMed for the identification and detailed mapping of rice areas and flooding/transplanting dates. MODIS was classified using ISODATA to generate cropping calendar, cropping intensity, cropping pattern and rice ecosystem information. Season and location specific thresholds from field observations were used to generate detailed maps of rice areas and flooding/transplanting dates from the SAR data. Error matrices were used for the accuracy assessment of the MODIS-derived rice characteristics map and the SAR-derived detailed rice area map, while Root Mean Square Error (RMSE) and linear correlation were used to assess the TSX-derived flooding/transplanting dates. Results showed that multitemporal high spatial resolution SAR data is effective for mapping rice areas and flooding/transplanting dates with an overall accuracy of 90% and a kappa of 0.72 and that hypertemporal moderate-resolution optical imagery is effective for the basic characterization of rice areas with an overall accuracy that ranged from 62% to 87% and a kappa of 0.52 to 0.72. This study has also provided the first assessment of the temporal variation in the backscatter of rice from CSK and TSX using large incidence angles covering all rice crop stages from pre-season until harvest. This complementarity in optical and SAR data can be further exploited in the near future with the increased availability of space-borne optical and SAR sensors. This new information can help improve the identification of rice areas.
机译:可以从不同的遥感来源获得不同的稻谷作物信息,以提供有关农业生产和粮食安全的决策和政策信息。这项研究的目的是从超时相光学和多时相高分辨率SAR图像中产生互补和全面的水稻作物信息。我们演示了将MODIS数据用于基于水稻的系统表征以及来自TerraSAR-X和CosmoSkyMed的X波段SAR数据,用于识别和详细绘制水稻区域以及洪水/移植日期。使用ISODATA对MODIS进行分类,以生成种植日历,种植强度,种植模式和水稻生态系统信息。实地观测的季节和位置特定阈值用于根据SAR数据生成详细的水稻面积图和洪水/移栽日期。误差矩阵用于评估MODIS衍生的水稻特征图和SAR衍生的详细水稻面积图的准确性,而均方根误差(RMSE)和线性相关性用于评估TSX衍生的淹没/移栽日期。结果表明,多时相高空间分辨率SAR数据可有效绘制水稻区域和洪水/移植日期,总体准确度为90%,kappa为0.72,超时空中分辨率光学成像有效地用于对水稻区域进行基本表征。整体准确度在62%至87%之间,kappa在0.52至0.72之间。这项研究还使用大的入射角覆盖了从季前到收获的所有水稻作物阶段,对CSK和TSX水稻反向散射的时间变化进行了首次评估。随着星载光学和SAR传感器可用性的提高,可以在不久的将来进一步利用光学和SAR数据的这种互补性。这些新信息可以帮助改善对水稻地区的识别。

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