In this paper, we present SyntNN as a way to include traditional syntactic models in multilayer neural networks used in the task of Semeval Task 2 of emoji prediction (Barbieri et al., 2018). The model builds on the distributed tree embedder also known as distributed tree kernel (Zanzotto and Dell’Arciprete, 2012). Initial results are extremely encouraging but additional analysis is needed to overcome the problem of overfitting.

Zanzotto, F.m., Santilli, A. (2018). SyntNN at SemEval-2018 Task 2: is Syntax Useful for Emoji Prediction? Embedding Syntactic Trees in Multi Layer Perceptrons. In Proceedings of The 12th International Workshop on Semantic Evaluation.

SyntNN at SemEval-2018 Task 2: is Syntax Useful for Emoji Prediction? Embedding Syntactic Trees in Multi Layer Perceptrons

zanzotto fabio massimo;
2018-01-01

Abstract

In this paper, we present SyntNN as a way to include traditional syntactic models in multilayer neural networks used in the task of Semeval Task 2 of emoji prediction (Barbieri et al., 2018). The model builds on the distributed tree embedder also known as distributed tree kernel (Zanzotto and Dell’Arciprete, 2012). Initial results are extremely encouraging but additional analysis is needed to overcome the problem of overfitting.
12th International Workshop on Semantic Evaluation (SemEval)
New Orleans (US)
2018
12
Rilevanza internazionale
contributo
2018
Settore INF/01 - INFORMATICA
Settore ING-INF/05 - SISTEMI DI ELABORAZIONE DELLE INFORMAZIONI
English
http://www.aclweb.org/anthology/S18-1076
Intervento a convegno
Zanzotto, F.m., Santilli, A. (2018). SyntNN at SemEval-2018 Task 2: is Syntax Useful for Emoji Prediction? Embedding Syntactic Trees in Multi Layer Perceptrons. In Proceedings of The 12th International Workshop on Semantic Evaluation.
Zanzotto, Fm; Santilli, A
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/207932
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