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首页> 外文期刊>Oceanographic Literature Review >Automated activity estimation of the cold-water coral lophelia pertusa by multispectral imaging and computational pixel classification
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Automated activity estimation of the cold-water coral lophelia pertusa by multispectral imaging and computational pixel classification

机译:多光谱成像和计算像素分类冷水珊瑚氯蛹自动化估计

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摘要

The cold-water coral Lophelia pertusa builds up bioherms that sustain high biodiversity in the deep ocean worldwide. Photographic monitoring of the polyp activity represents a helpful tool to characterize the health status of the corals and to as-sess anthropogenic impacts on the microhabitat. Discriminating active polyps from skeletons of white Lophelia pertusa is usually time consuming and error prone due to their similarity in color in common red-green-blue (RGB) camera footage. Acquisition of finer-resolved spectral information might increase the contrast between the segments of polyps and skeletons, and therefore could support automated classification and accurate activity estimation of polyps. For recording the needed footage, underwater multispectral imaging systems can be used, but they are often ex-pensive and bulky. Here we present results of a new, lightweight, compact, and low-cost deep-sea tunable LED-based underwater multispectral imaging system (TuLUMIS) with eight spectral channels. A branch of healthy white Lophelia pertusa was observed under controlled conditions in a laboratory tank. Spectral reflectance signatures were extracted from pixels of polyps and skeletons of the observed coral. Results showed that the polyps can be better distinguished from the skeleton by analysis of the eight-dimensional spectral reflectance signatures compared to three-channel RGB data. During a 72-h monitoring of the coral with a half-hour temporal resolution in the laboratory, the polyp activity was estimated based on the results of the multispectral pixel classification using a support vector machine (SVM) approach. The computational estimated polyp activity was consistent with that of the manual annotation, which yielded a correlation coefficient of 0.957.
机译:冷水珊瑚氯氏植物植物植物建立了在全世界深海的高海洋中维持高生物多样性的生物。 Polyp活动的摄影监测是一个有用的工具,可以表征珊瑚的健康状况以及对微藻的AS-Sess人类影响。根据普通红绿(RGB)相机镜头的颜色相似,判断来自白杆菌植物的骨骼的活性息肉通常是耗时和易于出错的。获取更精细分辨的光谱信息可能会增加息肉和骨架的段之间的对比,因此可以支持息肉的自动分类和准确的活动估计。为了记录所需的镜头,可以使用水下多光谱成像系统,但它们通常是例如沉思和笨重的。在这里,我们目前提供了一种具有八个光谱通道的新型,轻巧,紧凑,低成本和低成本的深海可调LED水下多光谱成像系统(Tulumis)的结果。在实验室坦克的受控条件下观察到健康白色leophelia pertusa的分支。从观察珊瑚的息肉和骨架的像素中提取光谱反射率签名。结果表明,通过对三维RGB数据的分析,可以通过分析八维光谱反射符号来更好地与骨架区分开息肉。在实验室中以半小时的时间分辨率进行72小时监测珊瑚期间,基于使用支持向量机(SVM)方法的多光谱像素分类的结果估计息肉活动。计算估计的息肉活性与手动注释的相一致,其产生0.957的相关系数。

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    《Oceanographic Literature Review》 |2021年第5期|1056-1056|共1页
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