B-Morpher: Automated Learning of Morphological Language Characteristics for Inflection and Morphological Analysis

Author:

Kovács László1,Szabó Gábor1

Affiliation:

1. Institute of Information Science , University of Miskolc , Hungary

Abstract

Abstract The automated induction of inflection rules is an important research area for computational linguistics. In this paper, we present a novel morphological rule induction model called B-Morpher that can be used for both inflection analysis and morphological analysis. The core element of the engine is a modified Bayes classifier in which class categories correspond to general string transformation rules. Beside the core classification module, the engine contains a neural network module and verification unit to improve classification accuracy. For the evaluation, beside the large Hungarian dataset the tests include smaller non-Hungarian datasets from the SIGMORPHON shared task pools. Our evaluation shows that the efficiency of B-Morpher is comparable with the best results, and it outperforms the state-of-theart base models for some languages. The proposed system can be characterized by not only high accuracy, but also short training time and small knowledge base size.

Publisher

Walter de Gruyter GmbH

Subject

General Computer Science

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