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首页> 外文期刊>Nature Communications >Orbitofrontal signals for two-component choice options comply with indifference curves of Revealed Preference Theory
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Orbitofrontal signals for two-component choice options comply with indifference curves of Revealed Preference Theory

机译:用于双组分选择选项的轨道转发信号符合揭示偏好理论的漠不关心曲线

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Economic choice options contain multiple components and constitute vectorial bundles. The question arises how they are represented by single-dimensional, scalar neuronal signals that are suitable for economic decision-making. Revealed Preference Theory provides formalisms for establishing preference relations between such bundles, including convenient graphic indifference curves. During stochastic choice between bundles with the same two juice components, we identified neuronal signals for vectorial, multi-component bundles in the orbitofrontal cortex of monkeys. A scalar signal integrated the values from all bundle components in the structured manner of the Theory; it followed the behavioral indifference curves within their confidence limits, was indistinguishable between differently composed but equally revealed preferred bundles, predicted bundle choice and complied with an optimality axiom. Further, distinct signals in other neurons coded the option components separately but followed indifference curves as a population. These data demonstrate how scalar signals represent vectorial, multi-component choice options.
机译:经济选择选项包含多个组件并构成矢量束。问题出现了它们如何由适合经济决策的单维标量神经元信号代表。透露偏好理论提供了用于在此类捆绑包之间建立偏好关系的形式主义,包括方便的图形漠不关心曲线。在具有相同两种果汁组分的束之间的随机选择期间,我们鉴定了猴子的眶内皮质中的横向血管多组分束的神经元信号。标量信号在理论的结构化方式中集成了所有捆绑组件的值;它遵循其置信限制内的行为漠不关心曲线,在不同组合之间无法区分,但同样地揭示了优选的捆绑,预测束选择并符合最优性公理。此外,其他神经元中的不同信号分别对选项组件进行了编码,但是作为群体的漠不关心曲线。这些数据演示了标量信号如何代表矢量,多组分选择选项。

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