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Accelerated High-Quality Mutual-Information Based Word Clustering

Research Output:
Conference Article in Proceeding or Book/Report chapter
Article in proceedings
Peer-review

Open access

Publication Information

Output type

Research Output:
Conference Article in Proceeding or Book/Report chapter
Article in proceedings
Peer-review

Original language

English

Pages from-to (Number of pages)

Pages 2484-2489 (6 pages)

Publication milestones

  • Published - 01/05/2020

Publication status

Published - 01/05/2020

Place of publication

Marseille, France

Publisher

European Language Resources Association

Publication IDs

  • Scopus: 85096595225

Host publication title

Proceedings of The 12th Language Resources and Evaluation Conference

Abstract

Word clustering groups words that exhibit similar properties. One popular method for this is Brown clustering, which uses short-range distributional information to construct clusters. Specifically, this is a hard hierarchical clustering with a fixed-width beam that employs bi-grams and greedily minimizes global mutual information loss. The result is word clusters that tend to outperform or complement other word representations, especially when constrained by small datasets. However, Brown clustering has high computational complexity and does not lend itself to parallel computation. This, together with the lack of efficient implementations, limits their applicability in NLP. We present efficient implementations of Brown clustering and the alternative Exchange clustering as well as a number of methods to accelerate the computation of both hierarchical and flat clusters. We show empirically that clusters obtained with the accelerated method match the performance of clusters computed using the original methods.

Publication metrics

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Captures
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Related Event

Title

Language Resources and Evaluation Conference

Event type

Conference

Degree of recognition

International event

Date

11/05/2020 - 16/05/2020

Location

MarseilleFrance