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基于深度学习的全天空相机成像日间云量计算研究

车蕾 李磊磊 刘立勇

天文学进展2024,Vol.42Issue(2):349-361,13.
天文学进展2024,Vol.42Issue(2):349-361,13.DOI:10.3969/j.issn.1000-8349.2024.02.11

基于深度学习的全天空相机成像日间云量计算研究

Research on Daytime Cloudiness Calculation for All-sky Camera Imagery Based on Deep Learning

车蕾 1李磊磊 1刘立勇2

作者信息

  • 1. 北京信息科技大学信息管理学院,北京 100192
  • 2. 中国科学院国家天文台,北京 100101
  • 折叠

摘要

Abstract

Cloudiness is one of the important evaluation parameters for the site selection of ground-based photoelectric telescopes in astronomical field.The traditional cloudiness calculation method has a large deviation in the accuracy of cloudiness calculation for all-sky camera imagery,which is difficult to meet the actual demand for the accuracy of cloudiness calculation in multiple fields,and there are some limitations in its detection model extraction capability.Aiming at the problems of daytime cloudiness calculation of all-sky camera imag-ing,a deep learning-based daytime cloudiness calculation model of all-sky camera imaging is proposed.In the cloudiness detection layer,the model constructs a Channel Weighting-Feature Fusion(CWFF)structure to enhance the cloud memory and deep feature extraction capability to accomplish the cloudiness detection task.In the cloudiness calculation layer,the model proposes a cloudiness calculation method based on the cloudiness detection model,which effectively improves the error rate of cloudiness calculation.Experiments show that the combined accuracy of this paper's method in the cloudiness detection task exceeds 95%,and the average absolute error in the cloudiness volume calculation task does not exceed 5%.

关键词

全天空相机/云量计算/深度学习/U型网络

Key words

all-sky camera imagery/cloudiness calculation/deep learning/U-Net

分类

信息技术与安全科学

引用本文复制引用

车蕾,李磊磊,刘立勇..基于深度学习的全天空相机成像日间云量计算研究[J].天文学进展,2024,42(2):349-361,13.

基金项目

国家重点研发计划(YS2021YFC2203202) (YS2021YFC2203202)

国家自然科学基金(11873063) (11873063)

全国高等院校计算机基础教育研究会计算机基础教育教学研究课题(2023-AFCEC-004) (2023-AFCEC-004)

天文学进展

OA北大核心CSTPCD

1000-8349

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