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首页> 外文期刊>The Journal of Neuroscience: The Official Journal of the Society for Neuroscience >Accounting for Taste: A Multi-Attribute Neurocomputational Model Explains the Neural Dynamics of Choices for Self and Others
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Accounting for Taste: A Multi-Attribute Neurocomputational Model Explains the Neural Dynamics of Choices for Self and Others

机译:味道核算:多属性神经计算机模型解释了自我和他人选择的神经动态

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摘要

How do we make choices for others with different preferences from our own? Although neuroimaging studies implicate similar circuits in representing preferences for oneself and others, some models propose that additional corrective mechanisms come online when choices for others diverge from one's own preferences. Here we used event-related potentials (ERPs) in humans, in combination with computational modeling, to examine how social information is integrated in the time leading up to choices for oneself and others. Hungry male and female participants with unrestricted diets selected foods for themselves, a similar unrestricted eater, and a dissimilar, self-identified healthy eater. Across choices for both oneself and others, ERP value signals emerged within the same time window but differentially reflected taste and health attributes based on the recipient's preferences. Choices for the dissimilar recipient were associated with earlier activity localized to brain regions implicated in social cognition, including temporoparietal junction. Finally, response-locked analysis revealed a late ERP component specific to choices for the similar recipient, localized to the parietal lobe, that appeared to reflect differences in the response threshold based on uncertainty. A multi-attribute computational model supported the link between specific ERP components and distinct model parameters, and was not significantly improved by adding time-dependent dual processes. Model simulations suggested that longer response times previously associated with effortful correction may alternatively arise from higher choice uncertainty. Together, these results provide a parsimonious neurocomputational mechanism for social decision-making, additionally explaining divergent patterns of choice and response time data in decisions for oneself and others.
机译:我们如何为自己的偏好做出选择的其他人?虽然神经影像画研究致命类似的电路代表自己和他人的偏好,但是一些模型提出了额外的纠正机制,当其他人从自己的偏好中分歧时,额外的纠正机制在线。在这里,我们将人类的事件相关的潜力(ERP)与计算建模结合使用,检查社交信息如何集成在为自己和其他人选择的选择中。饥饿的男性和女性参与者与不受限制的饮食为自己选择了食物,类似的不受限制的食客,以及一个不同,自我识别的健康食客。在自己和其他人的选择中,ERP值信号在同一时间窗口中出现,而是基于收件人的偏好来差异地反映的味觉和健康属性。不同接受者的选择与局部活动的早期活动相关联,脑域地区涉及社会认知,包括临时划分的交界处。最后,响应锁定的分析显示了对局部叶片定位的类似接收者的选择的后期ERP组件,其似乎基于不确定性反映了响应阈值的差异。多属性计算模型支持特定ERP组件与不同模型参数之间的链接,并且通过添加时间相关的双程,不会显着提高。模型模拟表明,从更高的选择不确定度可能会产生先前与努力校正相关联的响应时间。这些结果在一起,为社会决策提供了一个令人灾用的神经科学机制,另外解释了自己和其他人决策的不同选择和响应时间数据的不同模式。

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