3DuA-Net:融合3D卷积和双端注意力的短临降雨雷达回波外推模型
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兰州理工大学计算机与通信学院 兰州 730050

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TP391.41;TN959.4

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甘肃省自然科学基金(18JR3RA156)、兰州科技计划项目(2017-4-105)资助


3DuA-Net:Fusion of 3D convolution and attention for radar echo extrapolation forecasting
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School of Computer and Communication, Lanzhou University of Technology,Lanzhou 730050, China

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    摘要:

    针对短临降雨预测模型对历史雷达数据的建模结果存在视觉性能模糊和低估高回波值的问题,提出一种融合3D卷积和双端注意力机制的短临降雨雷达回波外推模型3DuA-Net。以ST-LSTM时空长短期记忆网络为循环单元,将普通卷积替换为3D卷积,增强模型从全局视角强化对短期运动特征信息的捕获能力。并提出DuAtt高效双端注意力机制,提高模型对长期雷达图像序列局部和全局重要特征信息的保存及结合能力。采用深圳气象局公开的多普勒雷达数据集进行实验,结果表明:在10、20、40 dBz阈值下,该模型相比Conv-LSTM基线模型的CSI指标平均提升7.74%,HSS指标平均提升5.54%,MAE指标下降3.8%,SSIM指标提升8.86%。

    Abstract:

    In response to the issues of visual performance blurring and underestimation of high echo values in the modeling results of traditional short-term rainfall prediction models for historical radar data, we propose a short-term rainfall radar echo extrapolation model that integrates 3D convolution and dual-end attention mechanism 3DuA-Net. Using ST-LSTM space-time long short-term memory networks as the recurrent units, replacing ordinary convolution with 3D convolution enhances the model′s capability to capture short-term motion features from a global perspective. Additionally, an efficient dual self-attention module DuAtt is proposed to improve the model′s ability to preserve and integrate important local and global features in long-term radar image sequences. Experimentation conducted using publicly available Doppler radar datasets from the Shenzhen Meteorological Bureau shows that, at 10、20、 40 dBz thresholds, the model exhibits an average improvement of 7.74% in the CSI metric compared to the Conv-LSTM model, an average improvement of 5.54% in the HSS metric, a decrease of 3.8% in the MAE metric, and an improvement of 8.86% in the SSIM metric.

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包广斌,罗曈,彭璐,赵怀森.3DuA-Net:融合3D卷积和双端注意力的短临降雨雷达回波外推模型[J].电子测量技术,2024,47(15):153-160

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  • 在线发布日期: 2024-11-28
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