Papers with WMT machine translation benchmarks

    1 papers
    Deep Equilibrium Non-Autoregressive Sequence Learning (2023.findings-acl)

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    Challenge: et al., 2017) is the most prevailing neural architecture for sequence-to-sequence learning.
    Approach: They propose to solve for the equilibrium state of NAR models with black-box root-finding solvers and back-propagate through the equilibrium point via implicit differentiation with constant memory.
    Outcome: The proposed framework can converge to a more accurate prediction on four WMT benchmarks.

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