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利用面部特征推断小鼠和猴子的内部状态。

Inferring internal states across mice and monkeys using facial features.

作者信息

Tlaie Alejandro, Abd El Hay Muad Y, Mert Berkutay, Taylor Robert, Ferracci Pierre-Antoine, Shapcott Katharine, Glukhova Mina, Pillow Jonathan W, Havenith Martha N, Schölvinck Marieke L

机构信息

Ernst Strüngmann Institute for Neuroscience in cooperation with the Max Planck Society, Frankfurt am Main, Germany.

Laboratory for Clinical Neuroscience, Universidad Politécnica de Madrid, Madrid, Spain.

出版信息

Nat Commun. 2025 Jun 4;16(1):5168. doi: 10.1038/s41467-025-60296-1.

Abstract

Animal behaviour is shaped to a large degree by internal cognitive states, but it is unknown whether these states are similar across species. To address this question, here we develop a virtual reality setup in which male mice and macaques engage in the same naturalistic visual foraging task. We exploit the richness of a wide range of facial features extracted from video recordings during the task, to train a Markov-Switching Linear Regression (MSLR). By doing so, we identify, on a single-trial basis, a set of internal states that reliably predicts when the animals are going to react to the presented stimuli. Even though the model is trained purely on reaction times, it can also predict task outcome, supporting the behavioural relevance of the inferred states. The relationship of the identified states to task performance is comparable between mice and monkeys. Furthermore, each state corresponds to a characteristic pattern of facial features that partially overlaps between species, highlighting the importance of facial expressions as manifestations of internal cognitive states across species.

摘要

动物行为在很大程度上受内部认知状态的影响,但尚不清楚这些状态在不同物种间是否相似。为解决这一问题,我们开发了一种虚拟现实装置,让雄性小鼠和猕猴参与相同的自然视觉觅食任务。我们利用从任务期间的视频记录中提取的丰富多样的面部特征,训练了一个马尔可夫切换线性回归模型(MSLR)。通过这样做,我们在单次试验的基础上识别出一组内部状态,这些状态能够可靠地预测动物何时会对呈现的刺激做出反应。尽管该模型仅基于反应时间进行训练,但它也能预测任务结果,这支持了所推断状态的行为相关性。小鼠和猴子之间,所识别状态与任务表现的关系具有可比性。此外,每种状态都对应着一种面部特征的特征模式,这种模式在不同物种间部分重叠,凸显了面部表情作为跨物种内部认知状态表现形式的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c673/12137566/f441c7b8e43b/41467_2025_60296_Fig1_HTML.jpg

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