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首页> 外文期刊>Philosophical Transactions of the Royal Society of London, Series B. Biological Sciences >Real-world visual statistics and infants' first-learned object names
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Real-world visual statistics and infants' first-learned object names

机译:现实世界的视觉统计和婴儿的首先学习对象名称

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摘要

We offer a new solution to the unsolved problem of how infants break into word learning based on the visual statistics of everyday infant-perspective scenes. Images from head camera video captured by 8 1/2 to 10 1/2 month-old infants at 147 at-home mealtime events were analysed for the objects in view. The images were found to be highly cluttered with many different objects in view. However, the frequency distribution of object categories was extremely right skewed such that a very small set of objects was pervasively present-a fact that may substantially reduce the problem of referential ambiguity. The statistical structure of objects in these infant egocentric scenes differs markedly from that in the training sets used in computational models and in experiments on statistical word-referent learning. Therefore, the results also indicate a need to re-examine current explanations of how infants break into word learning.
机译:我们提供了一个新的解决方案,以解决婴儿如何进入单词学习的日常视觉统计婴儿视角场景的基础上未解决的问题。对8个1/2至10个1/2月大的婴儿在147次家庭进餐活动中拍摄的头部摄像头视频中的图像进行了分析。研究发现,这些图像中有许多不同的物体,非常杂乱。然而,对象类别的频率分布是极右倾的,以至于一组非常小的对象普遍存在——这一事实可能会大大减少引用歧义的问题。在这些以婴儿为中心的场景中,对象的统计结构与计算模型和统计词指涉学习实验中使用的训练集明显不同。因此,研究结果也表明有必要重新审视目前关于婴儿如何进入单词学习的解释。

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