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Dual Classification Head Self-training Network for Cross-scene Hyperspectral Image Classification

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arxiv 2502.17879 v1 pith:CWVQ6VLT submitted 2025-02-25 cs.CV

classification cs.CV
keywords classificationcross-scenedatadhsnetdomaindualheadmodel
verification ladder T0 review T1 audit T2 compute T3 formal
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Due to the difficulty of obtaining labeled data for hyperspectral images (HSIs), cross-scene classification has emerged as a widely adopted approach in the remote sensing community. It involves training a model using labeled data from a source domain (SD) and unlabeled data from a target domain (TD), followed by inferencing on the TD. However, variations in the reflectance spectrum of the same object between the SD and the TD, as well as differences in the feature distribution of the same land cover class, pose significant challenges to the performance of cross-scene classification. To address this issue, we propose a dual classification head self-training network (DHSNet). This method aligns class-wise features across domains, ensuring that the trained classifier can accurately classify TD data of different classes. We introduce a dual classification head self-training strategy for the first time in the cross-scene HSI classification field. The proposed approach mitigates domain gap while preventing the accumulation of incorrect pseudo-labels in the model. Additionally, we incorporate a novel central feature attention mechanism to enhance the model's capacity to learn scene-invariant features across domains. Experimental results on three cross-scene HSI datasets demonstrate that the proposed DHSNET significantly outperforms other state-of-the-art approaches. The code for DHSNet will be available at https://github.com/liurongwhm.

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Cited by 1 Pith paper

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  1. Hyperspectral Image Classification via Transformer-based Spectral-Spatial Attention Decoupling and Adaptive Gating

    cs.CV 2025-06 reject novelty 5.0 of 10

    STNet combines explicitly decoupled spatial and spectral attention with adaptive fusion and feed-forward gating inside 3D-DenseNet, reporting near-perfect classification accuracy on Indian Pines, Pavia University, and KSC.

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