Mamba-CNN: Remote Sensing Image Scene Classification Network with Cross-fusion of Long Sequence and Short Sequence Features

Xinhu Qi, Zhijie Hu, Yue Gao, Yanbin Chen, Yanning Zhang

科研成果: 书/报告/会议事项章节会议稿件同行评审

摘要

Recently the state space models (SSMs) with efficient hardware-aware designs, namely the Mamba deep learning model, has shown great potential in long sequence modeling. Therefore, we propose a Mamba model suitable for remote sensing image scene classification, aiming to reduce computational complexity to linear while retaining the efficient modeling ability of long sequences. In order to enhance the adaptability of our model in processing remote sensing image, we introduce HWC-Mamba to achieve 1D selective scanning in a three-dimensional image space with a global receptive field. In addition, to compensate for the shortcomings of Mamba in effectively capturing short distance features, we have introduced Convolutional Neural Networks (CNN) to enhance the model's feature extraction ability for remote sensing image by integrating Mamba and CNN features. Experiments on two public remote sensing image datasets (AID and UCM) have demonstrated the feasibility and effectiveness of the proposed method for remote sensing image scene classification. Our method can greatly reduce the manpower and material costs of remote sensing image scene classification tasks.

源语言英语
主期刊名Proceedings - 2024 International Conference on Advances in Electrical Engineering and Computer Applications, AEECA 2024
出版商Institute of Electrical and Electronics Engineers Inc.
767-771
页数5
ISBN(电子版)9798350355253
DOI
出版状态已出版 - 2024
活动5th International Conference on Advances in Electrical Engineering and Computer Applications, AEECA 2024 - Dalian, 中国
期限: 16 8月 202418 8月 2024

出版系列

姓名Proceedings - 2024 International Conference on Advances in Electrical Engineering and Computer Applications, AEECA 2024

会议

会议5th International Conference on Advances in Electrical Engineering and Computer Applications, AEECA 2024
国家/地区中国
Dalian
时期16/08/2418/08/24

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