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1
Delving Deeper into Cross-lingual Visual Question Answering ...
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2
Cross-Lingual Dialogue Dataset Creation via Outline-Based Generation ...
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3
Improving Word Translation via Two-Stage Contrastive Learning ...
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4
Towards Zero-shot Language Modeling ...
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5
Multilingual and Cross-Lingual Intent Detection from Spoken Data ...
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6
Crossing the Conversational Chasm: A Primer on Natural Language Processing for Multilingual Task-Oriented Dialogue Systems ...
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7
Modelling Latent Translations for Cross-Lingual Transfer ...
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8
Prix-LM: Pretraining for Multilingual Knowledge Base Construction ...
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9
Learning Domain-Specialised Representations for Cross-Lingual Biomedical Entity Linking ...
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10
xGQA: Cross-Lingual Visual Question Answering ...
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11
On Cross-Lingual Retrieval with Multilingual Text Encoders ...
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12
MirrorWiC: On Eliciting Word-in-Context Representations from Pretrained Language Models ...
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13
Evaluating Multilingual Text Encoders for Unsupervised Cross-Lingual Retrieval ...
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14
AM2iCo: Evaluating Word Meaning in Context across Low-Resource Languages with Adversarial Examples ...
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15
Fast, Effective, and Self-Supervised: Transforming Masked Language Models into Universal Lexical and Sentence Encoders ...
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16
XCOPA: A Multilingual Dataset for Causal Commonsense Reasoning ...
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17
Emergent Communication Pretraining for Few-Shot Machine Translation ...
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18
Orthogonal Language and Task Adapters in Zero-Shot Cross-Lingual Transfer ...
Abstract: Adapter modules, additional trainable parameters that enable efficient fine-tuning of pretrained transformers, have recently been used for language specialization of multilingual transformers, improving downstream zero-shot cross-lingual transfer. In this work, we propose orthogonal language and task adapters (dubbed orthoadapters) for cross-lingual transfer. They are trained to encode language- and task-specific information that is complementary (i.e., orthogonal) to the knowledge already stored in the pretrained transformer's parameters. Our zero-shot cross-lingual transfer experiments, involving three tasks (POS-tagging, NER, NLI) and a set of 10 diverse languages, 1) point to the usefulness of orthoadapters in cross-lingual transfer, especially for the most complex NLI task, but also 2) indicate that the optimal adapter configuration highly depends on the task and the target language. We hope that our work will motivate a wider investigation of usefulness of orthogonality constraints in language- and ...
Keyword: Computation and Language cs.CL; FOS Computer and information sciences
URL: https://dx.doi.org/10.48550/arxiv.2012.06460
https://arxiv.org/abs/2012.06460
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19
MAD-X: An Adapter-Based Framework for Multi-Task Cross-Lingual Transfer ...
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20
How Good is Your Tokenizer? On the Monolingual Performance of Multilingual Language Models ...
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