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Using landscape context to map invasive species with medium-resolution satellite imagery

机译:使用景观背景以中等分辨率的卫星图像绘制入侵物种的地图

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摘要

The spread of invasive species is a global problem of major ecological and economic concern. Landscape level assessment of invasive spread is critical, but remote sensing (RS) analyses are often complicated by the spectral similarity of species and the need to balance spatial resolution with data storage and analysis complexity. One example is the ridge and slough landscape (RSL) of the Florida Everglades, where inflowing nutrients have facilitated large-scale cattail invasions. Hand delineation of aerial imagery has been successful in mapping cattail spread, but this technique requires considerable time and effort. Computerized classification of medium-resolution imagery would increase the ability of scientists to provide up-to-date data for water management decisions. Advances in RS technologies have created opportunities that were not previously available in landscapes such as the RSL—to automatically classify sawgrass and cattail communities with medium-resolution satellite imagery using knowledge of the invasion ecology of cattail and landscape context. We developed a computer-classification technique that provided measure of cattail expansion that matched ground-truthed data and show an increase in cattail area (similar to previous estimates), but a reduction in the rate of expansion over time. Although this technique can miss small patches of plants that might indicated new invasions, its rapid mapping can improve tracking of invasion fronts in the Everglades and other landscapes.
机译:入侵物种的扩散是一个主要的生态和经济关注的全球性问题。入侵性扩散的景观水平评估至关重要,但是由于物种的光谱相似性以及平衡空间分辨率与数据存储和分析复杂性的需求,遥感(RS)分析通常会变得复杂。一个例子是佛罗里达大沼泽地的山脊和泥沼景观(RSL),营养物质的流入促进了香蒲的大规模入侵。航空影像的手工描绘已成功绘制了香蒲的分布图,但这项技术需要大量的时间和精力。中分辨率图像的计算机分类将提高科学家为水管理决策提供最新数据的能力。 RS技术的进步创造了诸如RSL之类的景观中前所未有的机遇-利用香蒲和景观环境的入侵生态学知识,利用中分辨率卫星图像自动对锯齿和香蒲群落进行分类。我们开发了一种计算机分类技术,该技术可提供与地面真实数据相匹配的香蒲扩展量度,并显示出香蒲面积增加(类似于先前的估计),但随着时间的推移,扩展速率降低了。尽管此技术可能会错过可能指示新入侵的小块植物,但其快速映射可以改善对大沼泽地和其他景观的入侵前沿的跟踪。

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