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Finding the way from ae to a: Sub-character morphological inflection for the SIGMORPHON 2018 Shared Task

机译:从AE找到答:Sigmorphon 2018年分享任务的子字符形态拐点

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In this paper we describe the system submitted by UHH to the CoNLL-SIGMORPHON 2018 Shared Task: Universal Morphological Reinflection. We propose a neural architecture based on the concepts of UZH (Makarov et al., 2017), adding new ideas and techniques to their key concept and evaluating different combinations of parameters. The resulting system is a language-agnostic network model that aims to reduce the number of learned edit operations by introducing equivalence classes over graphical features of individual characters. We try to pinpoint advantages and drawbacks of this approach by comparing different network configurations and evaluating our results over a wide range of languages.
机译:在本文中,我们描述了UHH提交的系统到Conll-Sigmorphon 2018年共享任务:普遍形态再循环。我们提出了一种基于Uzh(Makarov等,2017)的概念的神经结构,向其关键概念添加新的想法和技术,并评估不同的参数组合。生成的系统是一种语言无神不可思的网络模型,其目的是通过在各个字符的图形特征上引入等效类来减少学习的编辑操作的数量。我们试图通过比较不同的网络配置并评估我们的各种语言的结果来确定这种方法的优缺点。

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