MSCM-net: A hyperspectral image classiffcation method based on multi-scale convolution and Mamba 文章

ArXiv CS.CV2026-07-31PAPERen作者: Jianjun Chen, Linlin Wang, Lifang Chang, Limin Huo, Shujiang Song, Yanjia Zhao, Mingwei Shao

详细信息

来源站点
ArXiv CS.CV
作者
Jianjun Chen, Linlin Wang, Lifang Chang, Limin Huo, Shujiang Song, Yanjia Zhao, Mingwei Shao
文章类型
PAPER
语言
en
发布日期
2026-07-31

摘要

arXiv:2607.28277v1 Announce Type: new Abstract: Hyperspectral imaging is widely used in remote sensing and engineering. Therefore, research on its classification methods is crucial. While CNN and Transformer-based methods have advanced, they still face locality constraints and high computational complexity. To address these issues, we propose an innovative hyperspectral image classification model, MSCM-net. Specifically, first of all, a model architecture combining multi-scale CNN and Mamba is proposed. It consists of a multi-scale feature extraction module (MCSE) and multiple stacked Mamba blocks, which integrates the local feature extraction capability of multi-scale CNN and the long sequence modeling advantage of Mamba. Secondly, the proposed MCSE module consists of multi-scale convolution and SENet. Convolution kernels of different scales extract local information with different receptive fields, enhancing the fusion of spatial and spectral information.

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