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Biases in Harmonic Grammar: the road to restrictive learning

机译:谐波语法中的偏见:限制性学习之路

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In the Optimality-Theoretic learnability and acquisition literature it has been proposed that certain classes of constraints must be biased toward particular rankings (e.g., Markedness 3> IO-Faithfulness; Specific IO-Faithfulness » General IO-Faithfulness). While sometimes difficult to implement efficiently or comprehensively, these biases are necessary to explain how learners acquire the most restrictive grammar consistent with positive evidence from the target language, and how innovative patterns emerge during the course of child phonological development. This paper demonstrates that altering the mode of constraint interaction from strict ranking as in Optimality Theory to additive weighting as in Harmonic Grammar (HG) reduces the number of classes of constraints that must be distinguished by such biases. Using weighted constraints and a version of the Gradual Learning Algorithm (GLA), the only distinction needed is between Output-based constraints, which must be biased toward high weights, and Input-Output-based constraints, which must be biased toward the lowest weights possible. We implement this distinction within the HG-GLA model by assigning different initial weights and plasticity values to the two classes of constraints. This implementation suffices to ensure that restrictive grammars are learned, and also predicts the emergence of a variety of attested intermediate stages during the course of acquisition.
机译:在最佳性理论可学习性和获取性文献中,有人提出必须将某些类别的约束偏向特定排名(例如,标记3> IO忠诚度;特定IO忠诚度»一般IO忠诚度)。尽管有时难以有效或全面地实施这些偏见,但这些偏见对于解释学习者如何从目标语言中获得与积极证据一致的限制性最强的语法以及在儿童语音发展过程中如何出现创新模式是必要的。本文证明,将约束相互作用的模式从“最优论”中的严格排名更改为“谐波语法(HG)”中的加性加权,可以减少必须由此类偏差区分的约束类别的数量。使用加权约束和逐步学习算法(GLA)的版本,唯一需要区别的是基于输出的约束(必须偏向高权重)和基于输入输出的约束(必须偏向最低权重)之间。可能。通过将不同的初始权重和可塑性值分配给两类约束条件,我们在HG-GLA模型中实现了这种区别。此实现足以确保学习限制性语法,并且还可以预测在获取过程中各种经过证明的中间阶段的出现。

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