Finite State Transducer Calculus for Whole Word Morphology

Maciej Janicki
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Abstract

The research on machine learning of morphology often involves formulating morphological descriptions directly on surface forms of words. As the established two-level morphology paradigm requires the knowledge of the underlying structure, it is not widely used in such settings. In this paper, we propose a formalism describing structural relationships between words based on theories of morphology that reject the notions of internal word structure and morpheme. The formalism covers a wide variety of morphological phenomena (including non-concatenative ones like stem vowel alternation) without the need of workarounds and extensions. Furthermore, we show that morphological rules formulated in such way can be easily translated to FSTs, which enables us to derive performant approaches to morphological analysis, generation and automatic rule discovery.
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全词形态学的有限状态换能器演算
词法的机器学习研究往往涉及直接在词的表面形式上形成词法描述。由于已建立的两层形态范式需要了解底层结构,因此在这种情况下并未得到广泛应用。在本文中,我们提出了一种基于形态学理论的描述词之间结构关系的形式主义,这种理论拒绝了词的内部结构和语素的概念。这种形式涵盖了各种各样的形态现象(包括非连接的现象,如词干元音交替),而不需要变通和扩展。此外,我们表明,以这种方式制定的形态学规则可以很容易地转换为fst,这使我们能够推导出形态学分析、生成和自动规则发现的高性能方法。
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