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Scale-Invariant Transition Probabilities in Free Word Association Trajectories

机译:自由词联想轨迹中的尺度不变过渡概率

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摘要

Free-word association has been used as a vehicle to understand the organization of human thoughts. The original studies relied mainly on qualitative assertions, yielding the widely intuitive notion that trajectories of word associations are structured, yet considerably more random than organized linguistic text. Here we set to determine a precise characterization of this space, generating a large number of word association trajectories in a web implemented game. We embedded the trajectories in the graph of word co-occurrences from a linguistic corpus. To constrain possible transport models we measured the memory loss and the cycling probability. These two measures could not be reconciled by a bounded diffusive model since the cycling probability was very high (16% of order-2 cycles) implying a majority of short-range associations whereas the memory loss was very rapid (converging to the asymptotic value in ∼7 steps) which, in turn, forced a high fraction of long-range associations. We show that memory loss and cycling probabilities of free word association trajectories can be simultaneously accounted by a model in which transitions are determined by a scale invariant probability distribution.
机译:自由词联想已被用作理解人类思想组织的工具。最初的研究主要依赖于定性断言,产生了广泛直观的观念,即单词联想的轨迹是结构化的,但比有组织的语言文本随机得多。在这里,我们开始确定该空间的精确特征,在网络实现的游戏中生成大量的单词关联轨迹。我们将轨迹嵌入来自语言语料库的单词共现图中。为了限制可能的传输模型,我们测量了内存损耗和循环概率。有界的扩散模型无法协调这两种测量,因为循环概率非常高(2阶循环的16%),这意味着大多数短程关联,而记忆力丧失却非常快(收敛于2的渐近值)。约7个步骤),这反过来又迫使很大一部分远程关联。我们表明,记忆损失和自由词联想轨迹的循环概率可以同时由一个模型来解决,在该模型中,过渡由规模不变概率分布确定。

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