Papers by Ileana Rugina

    1 papers
    Data-Informed Global Sparseness in Attention Mechanisms for Deep Neural Networks (2024.lrec-main)

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    Challenge: Attention pruning techniques have been developed to identify and exploit sparseness . previous work has taken pioneering steps to discover and explain the sparsity in attention patterns .
    Approach: They propose a framework that observes attention patterns in a fixed dataset and generates a global sparseness mask.
    Outcome: The proposed approach saves 90% of computations and maintains quality of results.

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