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Short-Term Prediction of Marine Sensor Data with Fuzzy Clustering

机译:模糊聚类的海洋传感器数据短期预测

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摘要

In predicting water quality variables in the short term, a novel technique using fuzzy pattern similarity-based fuzzy clustering has been proposed. The experimental results show that the proposed method outperforms than existing similar methods for sea water temperature and conductivity data sets from a marine sensor network for environmental monitoring. The short-term prediction of water quality variables has immense benefit in aquaculture and fisheries industries for decision-making purposes.
机译:在短期内预测水质变量时,提出了一种基于模糊模式相似度的模糊聚类新技术。实验结果表明,对于用于环境监测的海洋传感器网络中的海水温度和电导率数据集,该方法优于现有的类似方法。对水质变量的短期预测在水产养殖和渔业行业中具有巨大的收益,可用于决策目的。

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