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Data for paper: "Evaluating Resource-Lean Cross-Lingual Embedding Models in Unsupervised Retrieval" ...
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Abstract:
Cross-lingual embeddings (CLE) allow for cross-lingual natural language processing and information retrieval. Recently, a wide variety of resource-lean projection-based models for inducing CLEs appeared, requiring limited or no bilingual supervision. Despite potential usefulness in downstream IR and NLP tasks, these CLE models have almost exclusively been evaluated on word translation tasks. In this work, we provide a comprehensive comparative evaluation of projection-based CLE models for both sentence-level and document-level Cross-lingual Information Retrieval (CLIR). We hope our work serves as a guideline for choosing the right model for CLIR practitioners. ...
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URL: https://dx.doi.org/10.7801/360 https://madata.bib.uni-mannheim.de/360
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Crossing the Conversational Chasm: A Primer on Natural Language Processing for Multilingual Task-Oriented Dialogue Systems ...
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On Cross-Lingual Retrieval with Multilingual Text Encoders ...
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Evaluating Multilingual Text Encoders for Unsupervised Cross-Lingual Retrieval ...
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Verb Knowledge Injection for Multilingual Event Processing ...
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Is supervised syntactic parsing beneficial for language understanding tasks? An empirical investigation
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Evaluating multilingual text encoders for unsupervised cross-lingual retrieval
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Training and domain adaptation for supervised text segmentation
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