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Mapping marine phytoplankton assemblages from a hyperspectral and Artificial Intelligence perspective

机译:从高光谱和人工智能的角度绘制海洋浮游植物组合图

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The aim of this contribution is to demonstrate the feasibility of different processing techniques to identify phytoplankton assemblages when applied to oceanographic hyperspectral data sets (i.e. above surface measurements and vertical profiles). In order to address this issue and validate the proposed techniques, a simulated framework has been used based on the oceanic radiative transfer model Hydrolight-Ecolight 5.0. The potential offered by an unsupervised hierarchical cluster analysis technique and two Artificial Intelligence algorithms (i.e. Particle Swarm Optimization and Case-Based Reasoning) have been explored. Our results confirm their suitability to map phytoplankton's distribution from hyperspectral information given a variety of hypothetical oceanic environments.
机译:这项贡献的目的是证明将不同的处理技术应用于海洋高光谱数据集(即高于地面测量值和垂直剖面)时,识别浮游植物组合的可行性。为了解决此问题并验证所提出的技术,已使用基于海洋辐射传输模型Hydrolight-Ecolight 5.0的模拟框架。探究了无监督分层聚类分析技术和两种人工智能算法(即粒子群优化和基于案例的推理)所提供的潜力。我们的结果证实了在各种假设的海洋环境下,它们适合根据高光谱信息绘制浮游植物的分布图。

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