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Assessment of EO-1 Hyperion Imagery for Crop Discrimination Using Spectral Analysis

机译:使用光谱分析评估eo-1 Hyperion图像的作物歧视

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This paper outlines the research objectives to discriminate crop species using pure spectral-spatial reflectance of EO-1 Hyperion imagery. Vigorous encroachment in remote sensing unlocks the new avenues to investigate the hyper-spectral imagery for analysis and implication for crop-type classification and agricultural management. The investigated crop species were namely Sorghum, Wheat, and cotton located in West zone of Aurangabad, Maharashtra, India. The preprocessing algorithm namely quick atmospheric correction (QUAC) was applied to calibrate bad bands and construct precise data for crop discrimination. The machine learning classifiers applied to identify the pixels having a significant difference in pure spectral signatures based on Ground Control Point (GCP) and image spectral responses. The investigation was based on a binary encoding (BE) and support vector machine (SVM) learning approach in order to discriminate crop types. Crop discrimination followed land cover classes gives 73.35% accuracy using BE and SVM with polynomial third-degree order gives overall accuracy 90.44%. These results show that satellite data with 30 m spatial resolution (Hyperion) are able to identify crop species using Environment for Visualizing Images (ENVI) open source software.
机译:本文概述了使用EO-1 Hyperion Imagerery的纯谱 - 空间反射来区分作物物种的研究目标。遥感侵犯遥感解锁了新的途径,以研究分析和攻击作物型分类和农业管理的分析和含义。研究的作物物种是高粱,小麦和棉花,位于印度马哈拉施特拉邦西区的西区。预处理算法即快速的大气校正(QUAC)被应用于校准不良频段并构建用于作物歧视的精确数据。机器学习分类器应用于识别基于地面控制点(GCP)和图像光谱响应具有显着差异差异的像素。调查基于二进制编码(BE)和支持向量机(SVM)学习方法,以鉴别作物类型。作物歧视遵循陆地覆盖类别,使用BE和SVM具有多项式三度顺序的精度提供73.35%,使整体精度为90.44%。这些结果表明,具有30米空间分辨率(Hyperion)的卫星数据能够使用用于可视化图像(ENVI)开源软件的环境来识别裁剪物种。

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