Papers with long-context degradation

    1 papers
    LAMB: A Training-Free Method to Enhance the Long-Context Understanding of SSMs via Attention-Guided Token Filtering (2025.acl-short)

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    Challenge: Recent work attributes performance degradation to an exponential decay in hidden-state memory.
    Approach: They propose a token filtering strategy that is training-free and attention-guided . they propose 'LAMB' to preserve critical tokens during inference .
    Outcome: The proposed token filtering improves long-context performance by 30.35% over state-of-the-art methods on benchmarks.

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