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Modeling the Co-Emergence of Linguistic Constructions and Action Concepts: The Case of Action Verbs

机译:语言结构和动作概念的共同出现建模:动作动词案例

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In this paper, we are concerned with understanding how linguistic and conceptual structures co-emerge, shaping and influencing each other. Most theories and models of language acquisition so far have adopted a "mapping" paradigm according to which novel words or constructions are "mapped" onto existing, priorly acquired or innate concepts. Departing from this mapping approach, we present a computational model of the coemergence of linguistic and conceptual structures. We focus in particular on the case of action verbs and develop a model by which a system can learn the grounded meaning of a verbal construction without assuming the prior existence of a corresponding sensomotorically grounded action concept. Our model spells out how a learner can distill the essence of the meaning of a verbal construction as a process of incremental generalization of the meaning of action verbs, starting from a meaning that is specific to a certain situation in which the verb has been encountered. We understand the meaning of verbs as evoking a grounded simulation rather than a static concept and propose to capture the meaning of verbs via generative statistical models that support simulation, in our case hidden Markov models. Statistical models can represent the essence of a verb's meaning while modeling uncertainty and thus variation at the surface level of (observed) action performances. We show that by extending an existing framework for construction learning, our approach can account for the co-emergence of linguistic and conceptual structures. We provide proof-of-concept for our model by experimentally evaluating it on matching, choice, and generation tasks, showing that our model can not only understand but also produce language.
机译:在本文中,我们关注的是了解语言和概念结构如何相互融合,塑造和影响。迄今为止,大多数语言习得的理论和模型都采用“映射”范式,根据该范式,将新颖的单词或构造“映射”到现有的,先前习得的或固有的概念上。不同于这种映射方法,我们提出了一种语言和概念结构同时出现的计算模型。我们特别关注动作动词的情况,并开发一种模型,通过该模型,系统可以在不假设存在相应的以感觉运动为基础的动作概念的前提下,学习言语结构的基础含义。我们的模型阐明了学习者如何从行动动词的含义的渐进泛化过程中提取言语构造的本质,该过程从特定于遇到动词的特定情况的意义开始。我们理解动词的含义是唤起扎实的模拟而不是静态概念,并建议通过支持模拟的生成统计模型(在我们的情况下为隐马尔可夫模型)来捕获动词的含义。统计模型可以表示动词含义的本质,同时可以对不确定性建模,从而对(观察到的)动作表现的表面变化进行建模。我们表明,通过扩展现有的建构学习框架,我们的方法可以说明语言和概念结构的共同出现。通过对匹配,选择和生成任务进行实验评估,我们为模型提供了概念验证,表明我们的模型不仅可以理解,而且可以产生语言。

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