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Tailoring and Evaluating the Wikipedia for in-Domain Comparable Corpora Extraction ...
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Pairwise Neural Machine Translation Evaluation ...
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Abstract:
We present a novel framework for machine translation evaluation using neural networks in a pairwise setting, where the goal is to select the better translation from a pair of hypotheses, given the reference translation. In this framework, lexical, syntactic and semantic information from the reference and the two hypotheses is compacted into relatively small distributed vector representations, and fed into a multi-layer neural network that models the interaction between each of the hypotheses and the reference, as well as between the two hypotheses. These compact representations are in turn based on word and sentence embeddings, which are learned using neural networks. The framework is flexible, allows for efficient learning and classification, and yields correlation with humans that rivals the state of the art. ... : machine translation evaluation, machine translation, pairwise ranking, learning to rank. arXiv admin note: substantial text overlap with arXiv:1710.02095 ...
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Keyword:
68T50; Computation and Language cs.CL; FOS Computer and information sciences; I.2.7; Information Retrieval cs.IR; Machine Learning cs.LG
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URL: https://dx.doi.org/10.48550/arxiv.1912.03135 https://arxiv.org/abs/1912.03135
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How to (properly) evaluate cross-lingual word embeddings: On strong baselines, comparative analyses, and some misconceptions
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Generalized tuning of distributional word vectors for monolingual and cross-lingual lexical entailment
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Using Word Embeddings to Enforce Document-Level Lexical Consistency in Machine Translation
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In: Prague Bulletin of Mathematical Linguistics , Vol 108, Iss 1, Pp 85-96 (2017) (2017)
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High-order low-rank tensors for semantic role labeling
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In: MIT Web Domain (2015)
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SemEval-2010 Task 1 OntoNotes English: Coreference Resolution in Multiple Languages
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