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Long-term Radar Echo Extrapolation Method Based on Optical Flow and Deep Learning Hybrid Model

  • Songge Wang*
  • , Xichao Dong
  • , Yan Zhang
  • , Bojun Liu
  • , Junyun Liu
  • , Yaxuan Li
  • *此作品的通讯作者
  • Beijing Institute of Technology
  • Chongqing Meteorological Observatory

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

Radar echo extrapolation plays a crucial role in nowcasting. With the advancement of deep learning techniques in recent years, numerous advanced models for radar echo extrapolation have been introduced, resulting in great improvement in results and performance metrics. However, the extrapolation results of many existing LSTM-based networks tend to become increasingly blurred over time, losing precipitation details and failing to meet the requirements for refined forecasting. The complexity of network models also results in high memory consumption, which limits the size of input data and sequence length. Therefore, this paper proposes a radar echo extrapolation model that integrates the optical flow method with deep learning to address these issues. Within the 0-1 hour range, radar echoes, as spatiotemporal sequences, allow neural networks to extract more detailed features, thus enhancing performance. For the 1-2 hour range, the optical flow method, which consumes less memory, is used to avoid excessively blurred extrapolation results. Experimental results show that this hybrid model outperforms single models in the long-term radar echo extrapolation task within 0-2 hours.

源语言英语
主期刊名IEEE International Conference on Signal, Information and Data Processing, ICSIDP 2024
出版商Institute of Electrical and Electronics Engineers Inc.
ISBN(电子版)9798331515669
DOI
出版状态已出版 - 2024
活动2nd IEEE International Conference on Signal, Information and Data Processing, ICSIDP 2024 - Zhuhai, 中国
期限: 22 11月 202424 11月 2024

出版系列

姓名IEEE International Conference on Signal, Information and Data Processing, ICSIDP 2024

会议

会议2nd IEEE International Conference on Signal, Information and Data Processing, ICSIDP 2024
国家/地区中国
Zhuhai
时期22/11/2424/11/24

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