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The Logical Problem of Language Acquisition:A Probabilistic Perspective

机译:语言习得的逻辑问题:概率视角

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摘要

Natural language is full of patterns that appear to fit with general linguistic rules but are ungram-matical. There has been much debate over how children acquire these "linguistic restrictions," and whether innate language knowledge is needed. Recently, it has been shown that restrictions in language can be learned asymptotically via probabilistic inference using the minimum description length (MDL) principle. Here, we extend the MDL approach to give a simple and practical methodology for estimating how much linguistic data are required to learn a particular linguistic restriction. Our method provides a new research tool, allowing arguments about natural language learnability to be made explicit and quantified for the first time. We apply this method to a range of classic puzzles in language acquisition. We find some linguistic rules appear easily statistically learnable from language experience only, whereas others appear to require additional learning mechanisms (e.g., additional cues or innate constraints).
机译:自然语言充满了似乎符合一般语言规则但不合语法的模式。关于儿童如何获得这些“语言限制”以及是否需要先天语言知识,一直存在许多争论。近来,已经显示出可以使用最小描述长度(MDL)原理通过概率推理来渐近地学习语言的限制。在这里,我们扩展了MDL方法,以提供一种简单实用的方法来估算学习特定语言限制所需的语言数据。我们的方法提供了一种新的研究工具,使有关自然语言可学习性的争论首次得到明确和量化。我们将此方法应用于语言习得中的一系列经典难题。我们发现某些语言规则似乎仅从语言经验上就很容易从统计学上学习,而其他规则似乎需要其他学习机制(例如,其他提示或先天约束)。

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