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A Multianalyzer Machine Learning Model for Marine Heterogeneous Data Schema Mapping

机译:海洋异构数据架构映射的多同显式机器学习模型

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The main challenges that marine heterogeneous data integration faces are the problem of accurate schema mapping between heterogeneous data sources. In order to improve the schema mapping efficiency and get more accurate learning results, this paper proposes a heterogeneous data schema mapping method basing on multianalyzer machine learning model. The multianalyzer analysis the learning results comprehensively, and a fuzzy comprehensive evaluation system is introduced for output results’ evaluation and multi factor quantitative judging. Finally, the data mapping comparison experiment on the East China Sea observing data confirms the effectiveness of the model and shows multianalyzer’s obvious improvement of mapping error rate.
机译:海洋异构数据集成面的主要挑战是异构数据源之间准确模式映射的问题。为了提高模式映射效率并获得更准确的学习结果,本文提出了一种基于多同显式机器学习模型的异构数据模式映射方法。多层立面分析了学习结果,引入了对输出结果评价和多因素定量判断的模糊综合评价体系。最后,东海观测数据的数据映射比较实验证实了该模型的有效性,并显示了Multianalyzer对映射错误率的明显提高。

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