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Evaluating Multilingual Text Encoders for Unsupervised Cross-Lingual Retrieval ...
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Fast, Effective, and Self-Supervised: Transforming Masked Language Models into Universal Lexical and Sentence Encoders ...
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Cross-lingual semantic specialization via lexical relation induction ...
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Adversarial propagation and zero-shot cross-lingual transfer of word vector specialization ...
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Do we really need fully unsupervised cross-lingual embeddings? ...
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On the relation between linguistic typology and (limitations of) multilingual language modeling ...
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Cross-lingual semantic specialization via lexical relation induction
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Ponti, Edoardo; Vulić, I; Glavaš, G. - : EMNLP-IJCNLP 2019 - 2019 Conference on Empirical Methods in Natural Language Processing and 9th International Joint Conference on Natural Language Processing, Proceedings of the Conference, 2020
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On the relation between linguistic typology and (limitations of) multilingual language modeling
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Adversarial propagation and zero-shot cross-lingual transfer of word vector specialization
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Do we really need fully unsupervised cross-lingual embeddings?
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Vulić, I; Glavaš, G; Reichart, R. - : EMNLP-IJCNLP 2019 - 2019 Conference on Empirical Methods in Natural Language Processing and 9th International Joint Conference on Natural Language Processing, Proceedings of the Conference, 2020
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Towards zero-shot language modeling
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Ponti, Edoardo; Vulić, I; Cotterell, R. - : EMNLP-IJCNLP 2019 - 2019 Conference on Empirical Methods in Natural Language Processing and 9th International Joint Conference on Natural Language Processing, Proceedings of the Conference, 2020
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Zero-shot language transfer for cross-lingual sentence retrieval using bidirectional attention model ...
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Abstract:
We present a neural architecture for cross-lingual mate sentence retrieval which encodes sentences in a joint multilingual space and learns to distinguish true translation pairs from semantically related sentences across languages. The proposed model combines a recurrent sequence encoder with a bidirectional attention layer and an intra-sentence attention mechanism. This way the final fixed-size sentence representations in each training sentence pair depend on the selection of contextualized token representations from the other sentence. The representations of both sentences are then combined using the bilinear product function to predict the relevance score. We show that, coupled with a shared multilingual word embedding space, the proposed model strongly outperforms unsupervised cross-lingual ranking functions, and that further boosts can be achieved by combining the two approaches. Most importantly, we demonstrate the model's effectiveness in zero-shot language transfer settings: our multilingual ...
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URL: https://www.repository.cam.ac.uk/handle/1810/290531 https://dx.doi.org/10.17863/cam.37761
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Learning unsupervised multilingual word embeddings with incremental multilingual hubs ...
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Specializing distributional vectors of allwords for lexical entailment ...
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Investigating cross-lingual alignment methods for contextualized embeddings with Token-level evaluation ...
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Specializing distributional vectors of allwords for lexical entailment
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Investigating cross-lingual alignment methods for contextualized embeddings with Token-level evaluation
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Learning unsupervised multilingual word embeddings with incremental multilingual hubs
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Heyman, G; Verreet, B; Vulić, I. - : NAACL HLT 2019 - 2019 Conference of the North American Chapter of the Association for Computational Linguistics: Human Language Technologies - Proceedings of the Conference, 2019
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