时间和奖励的竞争性整合解释了价值敏感的觅食决策和额叶皮质斜坡动力学。

IF 15 1区 医学 Q1 NEUROSCIENCES
Michael Bukwich, Malcolm G Campbell, David Zoltowski, Lyle Kingsbury, Momchil S Tomov, Joshua Stern, HyungGoo R Kim, Jan Drugowitsch, Scott W Linderman, Naoshige Uchida
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引用次数: 0

摘要

斑块觅食是一种普遍存在的决策过程,在这个过程中,动物决定何时放弃价值逐渐减少的资源斑块,去寻找另一种选择。我们开发了一个虚拟觅食任务,在这个任务中,老鼠的行为随着补丁值的变化而系统地变化。行为可以用时间和奖励拮抗的模型来解释,用缓慢变化的潜在耐心状态来衡量。这些模型描述的是一种机制,而不是一种规范的处方,它们定量地捕获了与最佳觅食理论的偏差。整个额叶区域的神经像素记录显示了分布的斜坡信号,集中在额叶皮层,从中可以同样很好地解码多个积分器模型的决策变量。这些信号反映了决策模型的关键方面:它们逐渐上升,对时间和奖励的反应相反,对斑块丰富度敏感,并保留对奖励历史的记忆。总之,这些结果确定了通过额叶皮质斜坡动力学的整合作为解决补丁觅食问题的候选机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Competitive integration of time and reward explains value-sensitive foraging decisions and frontal cortex ramping dynamics.

Patch foraging is a ubiquitous decision-making process in which animals decide when to abandon a resource patch of diminishing value to pursue an alternative. We developed a virtual foraging task in which mouse behavior varied systematically with patch value. Behavior could be explained by models integrating time and rewards antagonistically, scaled by a slowly varying latent patience state. Describing a mechanism rather than a normative prescription, these models quantitatively captured deviations from optimal foraging theory. Neuropixels recordings throughout frontal areas revealed distributed ramping signals, concentrated in the frontal cortex, from which multiple integrator models' decision variables could be decoded equally well. These signals reflected key aspects of decision models: they ramped gradually, responded oppositely to time and rewards, were sensitive to patch richness, and retained memory of reward history. Together, these results identify integration via frontal cortex ramping dynamics as a candidate mechanism for solving patch-foraging problems.

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来源期刊
Neuron
Neuron 医学-神经科学
CiteScore
24.50
自引率
3.10%
发文量
382
审稿时长
1 months
期刊介绍: Established as a highly influential journal in neuroscience, Neuron is widely relied upon in the field. The editors adopt interdisciplinary strategies, integrating biophysical, cellular, developmental, and molecular approaches alongside a systems approach to sensory, motor, and higher-order cognitive functions. Serving as a premier intellectual forum, Neuron holds a prominent position in the entire neuroscience community.
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