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An Experiment on Behavior Generalization and the Emergence of Linguistic Compositionality in Evolving Robots

机译:进化行为的行为概括和语言合成的出现

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摘要

Populations of simulated agents controlled by dynamical neural networks are trained by artificial evolution to access linguistic instructions and to execute them by indicating, touching, or moving specific target objects. During training the agent experiences only a subset of all object/action pairs. During postevaluation, some of the successful agents proved to be able to access and execute also linguistic instructions not experienced during training. This owes to the development of a semantic space, grounded in the sensory motor capability of the agent and organized in a systematized way in order to facilitate linguistic compositionality and behavioral generalization. Compositionality seems to be underpinned by a capability of the agents to access and execute the instructions by temporally decomposing their linguistic and behavioral aspects into their constituent parts (i.e., finding the target object and executing the required action). The comparison between two experimental conditions, in one of which the agents are required to ignore rather than to indicate objects, shows that the composition of the behavioral set significantly influences the development of compositional semantic structures.
机译:由动态神经网络控制的模拟代理群体通过人工进化进行训练,以访问语言指令并通过指示,触摸或移动特定目标对象来执行它们。在训练期间,代理仅经历所有对象/动作对的子集。在后评估过程中,一些成功的特工被证明能够访问和执行培训期间未经历的语言说明。这归因于语义空间的发展,该语义空间基于主体的感觉运动能力,并以系统化的方式进行组织,以便促进语言组成和行为概括。通过将代理程序的语言和行为方面暂时分解为它们的组成部分(即,找到目标对象并执行所需的操作),代理程序访问和执行指令的能力似乎可以增强组合性。两种实验条件之间的比较表明,行为集的组成会显着影响组成语义结构的发展,在两种实验条件中,要求主体忽略而不是指示对象。

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