用网络模型模拟心理认知过程,揭示焦虑、创造力与失语症的结构机制
SpreadPy: A Python tool for modelling spreading activation and superdiffusion in cognitive multiplex networks
- 基于认知多层网络构建激活传播模拟框架
- 发现数学焦虑者概念组织结构差异,任务难度影响词汇调用路径
- 适合心理学、神经科学及教育研究者用于机制探索
我们提出 SpreadPy,一个用于模拟认知单层与多层网络中激活传播的 Python 工具库。该工具通过数值模拟测试认知过程中结构与功能的关系,结合知识建模的实证理论,系统研究激活动态如何反映认知、心理及临床现象。三个案例展示其应用:(1) 在联想知识网络上,激活传播可区分高/低数学焦虑学生,揭示焦虑相关的概念组织差异;(2) 创造性任务模拟显示激活轨迹随任务难度变化,暴露认知负荷对词汇获取的影响;(3) 失语症患者在词义网络上的模拟激活模式,与图片命名任务中的语义/语音错误类型显著相关,连接网络结构与临床表现。SpreadPy 允许使用实证或理论网络建模,为个体差异与认知障碍提供机制解释,开源可复现,适用于心理学、神经科学与教育研究。
原文摘要 · Abstract (English)
We introduce SpreadPy as a Python library for simulating spreading activation in cognitive single-layer and multiplex networks. Our tool is designed to perform numerical simulations testing structure-function relationships in cognitive processes. By comparing simulation results with grounded theories in knowledge modelling, SpreadPy enables systematic investigations of how activation dynamics reflect cognitive, psychological and clinical phenomena. We demonstrate the library's utility through three case studies: (1) Spreading activation on associative knowledge networks distinguishes students with high versus low math anxiety, revealing anxiety-related structural differences in conceptual organization; (2) Simulations of a creativity task show that activation trajectories vary with task difficulty, exposing how cognitive load modulates lexical access; (3) In individuals with aphasia, simulated activation patterns on lexical networks correlate with empirical error types (semantic vs. phonological) during picture-naming tasks, linking network structure to clinical impairments. SpreadPy's flexible framework allows researchers to model these processes using empirically derived or theoretical networks, providing mechanistic insights into individual differences and cognitive impairments. The library is openly available, supporting reproducible research in psychology, neuroscience, and education research.
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