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XFMamba: Cross-Fusion Mamba for Multi-View Medical Image Classification

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arxiv 2503.02619 v1 pith:IL7AASRR submitted 2025-03-04 cs.CV

classification cs.CV
keywords classificationmulti-viewimagemedicalxfmambaviewviewsapproaches
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Compared to single view medical image classification, using multiple views can significantly enhance predictive accuracy as it can account for the complementarity of each view while leveraging correlations between views. Existing multi-view approaches typically employ separate convolutional or transformer branches combined with simplistic feature fusion strategies. However, these approaches inadvertently disregard essential cross-view correlations, leading to suboptimal classification performance, and suffer from challenges with limited receptive field (CNNs) or quadratic computational complexity (transformers). Inspired by state space sequence models, we propose XFMamba, a pure Mamba-based cross-fusion architecture to address the challenge of multi-view medical image classification. XFMamba introduces a novel two-stage fusion strategy, facilitating the learning of single-view features and their cross-view disparity. This mechanism captures spatially long-range dependencies in each view while enhancing seamless information transfer between views. Results on three public datasets, MURA, CheXpert and DDSM, illustrate the effectiveness of our approach across diverse multi-view medical image classification tasks, showing that it outperforms existing convolution-based and transformer-based multi-view methods. Code is available at https://github.com/XZheng0427/XFMamba.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Mammo-Mamba: A Hybrid State-Space and Transformer Architecture with Sequential Mixture of Experts for Multi-View Mammography

    eess.IV 2025-07 conditional novelty 4.0 of 10

    Mammo-Mamba, a gated MambaVision model with sequential mixture-of-expert-style depth routing, reports 0.8696 accuracy and 0.9089 AUC on the CBIS-DDSM mass classification benchmark.

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