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Mlsa4rec: Mamba combined with low-rank de- composed self-attention for sequential recommendation,

3 Pith papers cite this work. Polarity classification is still indexing.

3 Pith papers citing it

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cs.LG 2 cs.IR 1

years

2026 2 2024 1

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UNVERDICTED 3

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representative citing papers

A Survey of Mamba

cs.LG · 2024-08-02 · unverdicted · novelty 2.0

The paper consolidates existing research on Mamba models, their architecture variants, adaptations to different data modalities, and applications across domains.

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Showing 2 of 2 citing papers after filters.

  • Mixture of Sequence: Theme-Aware Mixture-of-Experts for Long-Sequence Recommendation cs.IR · 2026-03-01 · unverdicted · none · ref 102

    MoS applies theme-aware routing to extract multi-scale theme-specific subsequences from noisy long user sequences, achieving state-of-the-art recommendation performance with fewer FLOPs than comparable MoE models.

  • A Survey of Mamba cs.LG · 2024-08-02 · unverdicted · none · ref 173

    The paper consolidates existing research on Mamba models, their architecture variants, adaptations to different data modalities, and applications across domains.