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paperarXivTrust 82 · PrimaryPublished 2d agoLive · yesterday

MBTI: A Multi-Branch Efficient Fine-Tuning Framework for Hyperspectral Image Classification with Foundation Models

Hyperspectral foundation models learn transferable spectral-spatial representations from large-scale unlabeled data. They provide an effective paradigm for adapting to downstream hyperspectral image (HSI) classification tasks with limited labeled samples. However, spectral band configurations vary substantially across sensors, which makes direct model transfer difficult. Existing adaptation strategies often compress, select, or reshape the original spectra to match model-specific input requirements. These operations may discard useful spectral information and weaken local spectral continuity.

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  • LinkedLinked via arxiv author · 85%Mingzhen Xu

    MBTI: A Multi-Branch Efficient Fine-Tuning Framework for Hyperspectral Image Classification with Foundation Models

  • LinkedLinked via arxiv author · 85%Haonan Guo

    MBTI: A Multi-Branch Efficient Fine-Tuning Framework for Hyperspectral Image Classification with Foundation Models

  • LinkedLinked via arxiv author · 85%Di Wang

    MBTI: A Multi-Branch Efficient Fine-Tuning Framework for Hyperspectral Image Classification with Foundation Models

  • LinkedLinked via arxiv author · 85%Yinghua Qu

    MBTI: A Multi-Branch Efficient Fine-Tuning Framework for Hyperspectral Image Classification with Foundation Models

  • LinkedLinked via arxiv author · 85%Zhiliang Zhou

    MBTI: A Multi-Branch Efficient Fine-Tuning Framework for Hyperspectral Image Classification with Foundation Models

  • LinkedLinked via arxiv author · 85%Lei Zhang

    MBTI: A Multi-Branch Efficient Fine-Tuning Framework for Hyperspectral Image Classification with Foundation Models

  • LinkedLinked via arxiv author · 85%Huiwen Yao

    MBTI: A Multi-Branch Efficient Fine-Tuning Framework for Hyperspectral Image Classification with Foundation Models

  • LinkedLinked via arxiv author · 85%Lirui Zhao

    MBTI: A Multi-Branch Efficient Fine-Tuning Framework for Hyperspectral Image Classification with Foundation Models

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