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巴甫洛夫式的逃避和回避控制。

Pavlovian Control of Escape and Avoidance.

机构信息

Harvard University.

Radboud University Nijmegen.

出版信息

J Cogn Neurosci. 2018 Oct;30(10):1379-1390. doi: 10.1162/jocn_a_01224. Epub 2017 Dec 15.

Abstract

To survive in complex environments, animals need to have mechanisms to select effective actions quickly, with minimal computational costs. As perhaps the computationally most parsimonious of these systems, Pavlovian control accomplishes this by hardwiring specific stereotyped responses to certain classes of stimuli. It is well documented that appetitive cues initiate a Pavlovian bias toward vigorous approach; however, Pavlovian responses to aversive stimuli are less well understood. Gaining a deeper understanding of aversive Pavlovian responses, such as active avoidance, is important given the critical role these behaviors play in several psychiatric conditions. The goal of the current study was to establish a behavioral and computational framework to examine aversive Pavlovian responses (activation vs. inhibition) depending on the proximity of an aversive state (escape vs. avoidance). We introduce a novel task in which participants are exposed to primary aversive (noise) stimuli and characterized behavior using a novel generative computational model. This model combines reinforcement learning and drift-diffusion models so as to capture effects of invigoration/inhibition in both explicit choice behavior as well as changes in RT. Choice and RT results both suggest that escape is associated with a bias for vigorous action, whereas avoidance is associated with behavioral inhibition. These results lay a foundation for future work seeking insights into typical and atypical aversive Pavlovian responses involved in psychiatric disorders, allowing us to quantify both implicit and explicit indices of vigorous choice behavior in the context of aversion.

摘要

为了在复杂环境中生存,动物需要有快速选择有效行动的机制,同时计算成本最小化。作为这些系统中计算最简约的系统之一,巴甫洛夫控制通过将特定的刻板反应硬连线到某些类别的刺激来实现这一点。有大量文献记录表明,食欲线索会引发对强烈接近的巴甫洛夫偏见;然而,对于厌恶刺激的巴甫洛夫反应,人们的了解较少。鉴于这些行为在几种精神疾病中起着至关重要的作用,深入了解厌恶的巴甫洛夫反应,如主动回避,非常重要。本研究的目的是建立一个行为和计算框架,根据厌恶状态(逃避或回避)的接近程度,来检查厌恶的巴甫洛夫反应(激活与抑制)。我们引入了一个新的任务,参与者在这个任务中接触到主要的厌恶(噪音)刺激,并使用新的生成计算模型来描述行为。该模型结合了强化学习和漂移扩散模型,以捕捉在明确选择行为以及 RT 变化中激励/抑制的影响。选择和 RT 的结果都表明,逃避与强烈行动的偏见有关,而回避与行为抑制有关。这些结果为未来的工作奠定了基础,这些工作旨在深入了解涉及精神障碍的典型和非典型厌恶的巴甫洛夫反应,使我们能够在厌恶的背景下量化强烈选择行为的隐含和显式指标。

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