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Home / Proceedings / Proceedings of the AAAI Conference on Artificial Intelligence, 29 / No.1: The Twenty-Ninth Conference on Artificial Intelligence

Learning Word Representations from Relational Graphs

March 8, 2023

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Authors

Danushka Bollegala

The University of Liverpool


Takanori Maehara

National Institute of Informatics


Yuichi Yoshida

National Institute of Informatics


Ken-ichi Kawarabayashi

National Institute of Informatics


DOI:

10.1609/aaai.v29i1.9494


Abstract:

Attributes of words and relations between two words are central to numerous tasks in Artificial Intelligence such as knowledge representation, similarity measurement, and analogy detection. Often when two words share one or more attributes in common, they are con- nected by some semantic relations. On the other hand, if there are numerous semantic relations between two words, we can expect some of the attributes of one of the words to be inherited by the other. Motivated by this close connection between attributes and relations, given a relational graph in which words are inter-connected via numerous semantic relations, we propose a method to learn a latent representation for the individual words. The proposed method considers not only the co-occurrences of words as done by existing approaches for word representation learning, but also the semantic relations in which two words co-occur. To evaluate the accuracy of the word representations learnt using the proposed method, we use the learnt word representa- tions to solve semantic word analogy problems. Our experimental results show that it is possible to learn better word representations by using semantic semantics between words.

Topics: AAAI

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HOW TO CITE:

Danushka Bollegala|| Takanori Maehara|| Yuichi Yoshida|| Ken-ichi Kawarabayashi Learning Word Representations from Relational Graphs Proceedings of the AAAI Conference on Artificial Intelligence, 29 (2015) .

Danushka Bollegala|| Takanori Maehara|| Yuichi Yoshida|| Ken-ichi Kawarabayashi Learning Word Representations from Relational Graphs AAAI 2015, .

Danushka Bollegala|| Takanori Maehara|| Yuichi Yoshida|| Ken-ichi Kawarabayashi (2015). Learning Word Representations from Relational Graphs. Proceedings of the AAAI Conference on Artificial Intelligence, 29, .

Danushka Bollegala|| Takanori Maehara|| Yuichi Yoshida|| Ken-ichi Kawarabayashi. Learning Word Representations from Relational Graphs. Proceedings of the AAAI Conference on Artificial Intelligence, 29 2015 p..

Danushka Bollegala|| Takanori Maehara|| Yuichi Yoshida|| Ken-ichi Kawarabayashi. 2015. Learning Word Representations from Relational Graphs. "Proceedings of the AAAI Conference on Artificial Intelligence, 29". .

Danushka Bollegala|| Takanori Maehara|| Yuichi Yoshida|| Ken-ichi Kawarabayashi. (2015) "Learning Word Representations from Relational Graphs", Proceedings of the AAAI Conference on Artificial Intelligence, 29, p.

Danushka Bollegala|| Takanori Maehara|| Yuichi Yoshida|| Ken-ichi Kawarabayashi, "Learning Word Representations from Relational Graphs", AAAI, p., 2015.

Danushka Bollegala|| Takanori Maehara|| Yuichi Yoshida|| Ken-ichi Kawarabayashi. "Learning Word Representations from Relational Graphs". Proceedings of the AAAI Conference on Artificial Intelligence, 29, 2015, p..

Danushka Bollegala|| Takanori Maehara|| Yuichi Yoshida|| Ken-ichi Kawarabayashi. "Learning Word Representations from Relational Graphs". Proceedings of the AAAI Conference on Artificial Intelligence, 29, (2015): .

Danushka Bollegala|| Takanori Maehara|| Yuichi Yoshida|| Ken-ichi Kawarabayashi. Learning Word Representations from Relational Graphs. AAAI[Internet]. 2015[cited 2023]; .


ISSN: 2374-3468


Published by AAAI Press, Palo Alto, California USA
Copyright 2022, Association for the Advancement of
Artificial Intelligence 1900 Embarcadero Road, Suite
101, Palo Alto, California 94303 All Rights Reserved

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