【2h】

Kinematic mental simulations in abduction and deduction

机译:绑架和演绎中的运动思维模拟

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摘要

We present a theory, and its computer implementation, of how mental simulations underlie the abductions of informal algorithms and deductions from these algorithms. Three experiments tested the theory’s predictions, using an environment of a single railway track and a siding. This environment is akin to a universal Turing machine, but it is simple enough for nonprogrammers to use. Participants solved problems that required use of the siding to rearrange the order of cars in a train (experiment 1). Participants abduced and described in their own words algorithms that solved such problems for trains of any length, and, as the use of simulation predicts, they favored “while-loops” over “for-loops” in their descriptions (experiment 2). Given descriptions of loops of procedures, participants deduced the consequences for given trains of six cars, doing so without access to the railway environment (experiment 3). As the theory predicts, difficulty in rearranging trains depends on the numbers of moves and cars to be moved, whereas in formulating an algorithm and deducing its consequences, it depends on the Kolmogorov complexity of the algorithm. Overall, the results corroborated the use of a kinematic mental model in creating and testing informal algorithms and showed that individuals differ reliably in the ability to carry out these tasks.
机译:我们提出了一种理论及其计算机实现方法,用于说明心理模拟如何构成非正式算法的绑架以及从这些算法中得出的推论。三个实验使用了一条铁路轨道和壁板的环境,测试了该理论的预测。这种环境类似于通用的图灵机,但对于非程序员而言,使用起来非常简单。参与者解决了一些问题,这些问题需要使用壁板来重新排列火车中的汽车顺序(实验1)。参与者用自己的话语绑架和描述了算法,该算法解决了任何长度的列车的此类问题,并且,如使用模拟所预测的,他们在描述中更喜欢“ while循环”而不是“ for循环”(实验2)。在给出了程序循环的描述后,参与者推论出给定的六辆车的火车的后果,而这样做没有进入铁路环境(实验3)。正如理论所预测的那样,重新安排火车的难度取决于行进的数量和要移动的轿厢,而制定算法并推论其后果则取决于算法的Kolmogorov复杂性。总体而言,该结果证实了在创建和测试非正式算法中使用运动学心理模型的情况,并表明个人在执行这些任务的能力方面确实存在差异。

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