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4 months ago

Finding Function in Form: Compositional Character Models for Open Vocabulary Word Representation

Wang Ling; Tiago Luís; Luís Marujo; Ramón Fernandez Astudillo; Silvio Amir; Chris Dyer; Alan W. Black; Isabel Trancoso

Finding Function in Form: Compositional Character Models for Open Vocabulary Word Representation

Abstract

We introduce a model for constructing vector representations of words by composing characters using bidirectional LSTMs. Relative to traditional word representation models that have independent vectors for each word type, our model requires only a single vector per character type and a fixed set of parameters for the compositional model. Despite the compactness of this model and, more importantly, the arbitrary nature of the form-function relationship in language, our "composed" word representations yield state-of-the-art results in language modeling and part-of-speech tagging. Benefits over traditional baselines are particularly pronounced in morphologically rich languages (e.g., Turkish).

Code Repositories

wlin12/JNN
Official
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
part-of-speech-tagging-on-penn-treebankChar Bi-LSTM
Accuracy: 97.78
part-of-speech-tagging-on-penn-treebankBi-LSTM
Accuracy: 97.36

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Finding Function in Form: Compositional Character Models for Open Vocabulary Word Representation | Papers | HyperAI