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1
Detecting Text Formality: A Study of Text Classification Approaches ...
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2
Taxonomy Enrichment with Text and Graph Vector Representations ...
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3
Active Learning for Sequence Tagging with Deep Pre-trained Models and Bayesian Uncertainty Estimates ...
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4
Documents Representation via Generalized Coupled Tensor Chain with the Rotation Group constraint ...
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5
RUSSE'2020: Findings of the First Taxonomy Enrichment Task for the Russian language ...
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6
Word Sense Disambiguation for 158 Languages using Word Embeddings Only ...
Abstract: Disambiguation of word senses in context is easy for humans, but is a major challenge for automatic approaches. Sophisticated supervised and knowledge-based models were developed to solve this task. However, (i) the inherent Zipfian distribution of supervised training instances for a given word and/or (ii) the quality of linguistic knowledge representations motivate the development of completely unsupervised and knowledge-free approaches to word sense disambiguation (WSD). They are particularly useful for under-resourced languages which do not have any resources for building either supervised and/or knowledge-based models. In this paper, we present a method that takes as input a standard pre-trained word embedding model and induces a fully-fledged word sense inventory, which can be used for disambiguation in context. We use this method to induce a collection of sense inventories for 158 languages on the basis of the original pre-trained fastText word embeddings by Grave et al. (2018), enabling WSD in these ... : 10 pages, 5 figures, 4 tables, accepted at LREC 2020 ...
Keyword: Computation and Language cs.CL; FOS Computer and information sciences
URL: https://dx.doi.org/10.48550/arxiv.2003.06651
https://arxiv.org/abs/2003.06651
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7
Studying Taxonomy Enrichment on Diachronic WordNet Versions ...
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8
A Comparative Study of Lexical Substitution Approaches based on Neural Language Models ...
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9
Making Fast Graph-based Algorithms with Graph Metric Embeddings ...
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10
On the Compositionality Prediction of Noun Phrases using Poincaré Embeddings ...
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11
Every child should have parents: a taxonomy refinement algorithm based on hyperbolic term embeddings ...
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12
Hypernyms extracted from a large text corpus using Hearst lexical-syntactic patterns ...
Panchenko, Alexander. - : Zenodo, 2019
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13
Hypernyms extracted from a large text corpus using Hearst lexical-syntactic patterns ...
Panchenko, Alexander. - : Zenodo, 2019
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14
Datasets for Watset: Local-Global Graph Clustering with Applications in Sense and Frame Induction ...
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15
Datasets for Watset: Local-Global Graph Clustering with Applications in Sense and Frame Induction ...
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16
HHMM at SemEval-2019 Task 2: Unsupervised frame induction using contextualized word embeddings
Arefyev, Nikolay; Panchenko, Alexander; Anwar, Saba. - : Association for Computational Linguistics, ACL, 2019
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17
Watset: Local-global graph clustering with applications in sense and frame induction
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18
RUSSE'2018 : a shared task on word sense induction for the Russian language
Panchenko, Alexander [Verfasser]; Lopukhina, Anastasiya [Verfasser]; Ustalov, Dmitry [Verfasser]. - Mannheim : Universitätsbibliothek Mannheim, 2018
DNB Subject Category Language
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19
RUSSE'2018: A Shared Task on Word Sense Induction for the Russian Language ...
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20
Sentiment Index of the Russian Speaking Facebook ...
Panchenko, Alexander. - : arXiv, 2018
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