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沉浸式集体觅食中社会学习与非社会学习的适应性机制。

Adaptive mechanisms of social and asocial learning in immersive collective foraging.

作者信息

Wu Charley M, Deffner Dominik, Kahl Benjamin, Meder Björn, Ho Mark H, Kurvers Ralf H J M

机构信息

Human and Machine Cognition Lab, University of Tübingen, Tübingen, Germany.

Centre for Adaptive Rationality, Max Planck Institute for Human Development, Berlin, Germany.

出版信息

Nat Commun. 2025 Apr 25;16(1):3539. doi: 10.1038/s41467-025-58365-6.

Abstract

Human cognition is distinguished by our ability to adapt to different environments and circumstances. Yet the mechanisms driving adaptive behavior have predominantly been studied in separate asocial and social contexts, with an integrated framework remaining elusive. Here, we use a collective foraging task in a virtual Minecraft environment to integrate these two fields, by leveraging automated transcriptions of visual field data combined with high-resolution spatial trajectories. Our behavioral analyses capture both the structure and temporal dynamics of social interactions, which are then directly tested using computational models sequentially predicting each foraging decision. These results reveal that adaptation mechanisms of both asocial foraging and selective social learning are driven by individual foraging success (rather than social factors). Furthermore, it is the degree of adaptivity-of both asocial and social learning-that best predicts individual performance. These findings not only integrate theories across asocial and social domains, but also provide key insights into the adaptability of human decision-making in complex and dynamic social landscapes.

摘要

人类认知的独特之处在于我们适应不同环境和情况的能力。然而,驱动适应性行为的机制主要是在单独的非社会和社会背景下进行研究的,一个综合框架仍然难以捉摸。在这里,我们在虚拟的《我的世界》环境中使用一项集体觅食任务,通过利用视野数据的自动转录结合高分辨率空间轨迹,将这两个领域整合起来。我们的行为分析捕捉了社会互动的结构和时间动态,然后使用依次预测每个觅食决策的计算模型直接进行测试。这些结果表明,非社会觅食和选择性社会学习的适应机制都是由个体觅食成功(而非社会因素)驱动的。此外,正是非社会和社会学习的适应程度最能预测个体表现。这些发现不仅整合了非社会和社会领域的理论,还为人类在复杂动态社会环境中决策的适应性提供了关键见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d715/12032219/9e4c1888cc9d/41467_2025_58365_Fig1_HTML.jpg

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