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APPLICATION OF CLUSTERING TECHNIQUES TO MULTISPECTRAL OPTICAL DATA OVER THE OCEAN

机译:将聚类技术在海洋上的多光谱光学数据中的应用

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MERIS, on Envisat, provides high-resolution radiometric data at nine discrete channels in the visible band. This paper looks at the potential of an unsupervised classification technique for utilizing these multi-spectral data to provide better discrimination between water masses according to their optical properties, and in particular whether phytoplankton groups can be distinguished. Although the majority of data do show a spectral peak associated with chlorophyll's red fluorescence line, clustering using only the red bands was found to separate out coastal waters according to their sediment content. Red-end classification also appeared to identify sub-pixel cloud, and demonstrate that the smile correction had not removed all the striping from the data. Classification using bands from the blue-green end showed a response to changes in chlorophyll concentration, but also indicated other variations. However, without in situ data no firm conclusions can be drawn on which phytoplankton groupings are present.
机译:在Envisat上的Meris在可见频带中提供九个离散通道的高分辨率辐射数据。本文介绍了利用这些多光谱数据的无监督分类技术的潜力,以根据其光学性质在水质量之间提供更好的辨别,特别是可以区分浮游植物组。尽管大多数数据确实显示了与叶绿素的红色荧光线相关的光谱峰,但仅发现使用红色带的聚类来根据其沉积物含量分离沿海水域。 RED-END分类也似乎识别子像素云,并证明微笑校​​正没有从数据中删除所有条带。使用来自蓝绿色末端的带的分类显示对叶绿素浓度的变化的反应,但也表明了其他变化。但是,没有原位数据,可以在存在浮游植物分组的情况下绘制任何公司的结论。

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