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METHODS AND SYSTEMS FOR CLIMATE FORECASTING USING ARTIFICIAL NEURAL NETWORKS

机译:使用人工神经网络进行气候预测的方法和系统

摘要

Methods and systems for generating a neural network (NN)-based climate forecasting model are disclosed. The methods and systems perform steps of generating a multi-model ensemble of global climate simulation data by combining simulation data from at least two global climate simulation models; pre-processing the multi-model ensemble of global climate simulation data, where the pre-processing comprises at least one action of spatial re-gridding, temporal homogenization, and data augmentation; training the NN-based climate forecasting model on the pre-processed multi-model ensemble of global climate simulation data; and validating the NN-based climate forecasting model using observational historical climate data. Embodiments of the present invention enable accurate climate forecasting without the need to run new dynamical global climate simulations on supercomputers. Also disclosed are benefits of the new methods, and alternative embodiments of implementation.
机译:公开了用于生成基于神经网络(NN)的气候预测模型的方法和系统。该方法和系统通过组合来自至少两个全球气候模拟模型的模拟数据来执行生成全球气候模拟数据的多模型集合的步骤;对全球气候模拟数据的多模型集合进行预处理,其中预处理包括空间重新网格化,时间均质化和数据增强中的至少一项动作;在全球气候模拟数据的预处理多模型集合中训练基于NN的气候预测模型;并使用历史气候观测数据验证基于NN的气候预测模型。本发明的实施例使得能够进行准确的气候预测,而不需要在超级计算机上运行新的动态全球气候模拟。还公开了新方法的优点以及实施的替代实施例。

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