SOTAVerified

Word Sense Induction

Word sense induction (WSI) is widely known as the “unsupervised version” of WSD. The problem states as: Given a target word (e.g., “cold”) and a collection of sentences (e.g., “I caught a cold”, “The weather is cold”) that use the word, cluster the sentences according to their different senses/meanings. We do not need to know the sense/meaning of each cluster, but sentences inside a cluster should have used the target words with the same sense.

Description from NLP Progress

Papers

Showing 76–100 of 107 papers

TitleStatusHype
SemEval-2013 Task 11: Word Sense Induction and Disambiguation within an End-User Application—0
SemEval-2013 Task 13: Word Sense Induction for Graded and Non-Graded Senses—0
Sense Embedding Learning for Word Sense Induction—0
Structured Generative Models of Continuous Features for Word Sense Induction—0
Supervised and unsupervised approaches to measuring usage similarity—0
The brWaC Corpus: A New Open Resource for Brazilian Portuguese—0
The LSCD Benchmark: a Testbed for Diachronic Word Meaning Tasks—0
Topological Data Analysis for Word Sense Disambiguation—0
Topology of Word Embeddings: Singularities Reflect Polysemy—0
Towards Dynamic Word Sense Discrimination with Random Indexing—0
Absinth: A small world approach to word sense induction—0
UKP-WSI: UKP Lab Semeval-2013 Task 11 System Description—0
unimelb: Topic Modelling-based Word Sense Induction for Web Snippet Clustering—0
Unsupervised Does Not Mean Uninterpretable: The Case for Word Sense Induction and Disambiguation—0
Unsupervised Estimation of Word Usage Similarity—0
A Simple Approach to Learn Polysemous Word EmbeddingsCode0
Exploring Topic Coherence over Many Models and Many TopicsCode0
Watset: Automatic Induction of Synsets from a Graph of SynonymsCode0
A Systematic Comparison of Contextualized Word Embeddings for Lexical Semantic ChangeCode0
Words as Gatekeepers: Measuring Discipline-specific Terms and Meanings in Scholarly PublicationsCode0
Automated WordNet Construction Using Word EmbeddingsCode0
An Evaluation Method for Diachronic Word Sense InductionCode0
How does BERT capture semantics? A closer look at polysemous wordsCode0
UoB at SemEval-2020 Task 1: Automatic Identification of Novel Word SensesCode0
AutoSense Model for Word Sense InductionCode0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1BERT+DPF-Score71.3—Unverified
2AutoSenseF-Score61.7—Unverified
3LDAF-Score60.7—Unverified
4SE-WSI-fixF-Score55.1—Unverified
5BNP-HCF-Score23.1—Unverified