Clustering analysis applied to NDVI/NOAA multitemporal images to improve the monitoring process of sugarcane crops

L. A. Romani, R. R. V. Gonçalves, B. Amaral, D. Y. T. Chino, J. Zullo, C. Traina, E. P. M. Sousa, A. J. Traina
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引用次数: 17

Abstract

This paper discusses how to take advantage of clustering techniques to analyze and extract useful information from multi-temporal images of low spatial resolution satellites to monitor the sugarcane expansion. Additionally, we introduce the SatImagExplorer system that was developed to automatically extract time series from a huge volume of remote sensing images as well as provide algorithms of clustering analysis and geospatial visualization. According to experiments accomplished with spectral images of sugarcane fields, this proposed approach can be satisfactorily used in crop monitoring.
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将聚类分析应用于NDVI/NOAA多时相图像,改进甘蔗作物的监测过程
本文讨论了如何利用聚类技术对低空间分辨率卫星多时相影像进行分析和提取有用信息,以监测甘蔗扩张情况。此外,我们还介绍了SatImagExplorer系统,该系统可以从大量遥感图像中自动提取时间序列,并提供聚类分析和地理空间可视化算法。利用甘蔗田光谱图像进行的实验表明,该方法可以很好地用于作物监测。
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