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首页> 外文期刊>Journal of Neurophysiology >Neurally constrained modeling of speed-accuracy tradeoff during visual search: gated accumulation of modulated evidence
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Neurally constrained modeling of speed-accuracy tradeoff during visual search: gated accumulation of modulated evidence

机译:视觉搜索过程中的速度准确性权衡的神经系统的建模:调制证据的门控累积

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Stochastic accumulator models account for response times and errors in perceptual decision making by assuming a noisy accumulation of perceptual evidence to a threshold. Previously, we explained saccade visual search decision making by macaque monkeys with a stochastic multiaccumulator model in which accumulation was driven by a gated feed-forward integration to threshold of spike trains from visually responsive neurons in frontal eye field that signal stimulus salience. This neurally constrained model quantitatively accounted for response times and errors in visual search for a target among varying numbers of distractors and replicated the dynamics of presaccadic movement neurons hypothesized to instantiate evidence accumulation. This modeling framework suggested strategic control over gate or over threshold as two potential mechanisms to accomplish speed-accuracy tradeoff (SAT). Here, we show that our gated accumulator model framework can account for visual search performance under SAT instructions observed in a milestone neurophysiological study of frontal eye field. This framework captured key elements of saccade search performance, through observed modulations of neural input, as well as flexible combinations of gate and threshold parameters necessary to explain differences in SAT strategy across monkeys. However, the trajectories of the model accumulators deviated from the dynamics of most presaccadic movement neurons. These findings demonstrate that traditional theoretical accounts of SAT are incomplete descriptions of the underlying neural adjustments that accomplish SAT, offer a novel mechanistic account of decision-making mechanisms during speed-accuracy tradeoff, and highlight questions regarding the identity of model and neural accumulators.
机译:随机蓄能器模型通过假设感知证据的嘈杂积累到阈值来实现感知决策中的响应时间和错误。以前,我们解释了短尾猴用随机多穴模型的扫描视觉搜索决策,其中通过在信号刺激显着的前面响应神经元的视觉响应神经元的峰值峰值中积累了积累。这种神经限制的模型在视觉搜索的响应时间和错误中定量占响应时间和误差在不同数量的分散组中,并将假设的PrecActic运动神经元的动态复制到实例化证据积累。该建模框架建议将栅极或超过阈值的战略控制,作为实现速度准确性权衡(SAT)的两个潜在机制。在这里,我们表明,我们的门控累加器模型框架可以在正面眼域的里程碑神经生理研究中观察到的SAT指令下进行视觉搜索性能。该框架捕获了扫视搜索性能的关键要素,通过观察到的神经输入的调制,以及在猴子跨猴子策略的差异所必需的栅极和阈值参数的灵活组合。然而,模型累加器的轨迹偏离了大多数PresAccadic运动神经元的动态。这些调查结果表明,SAT的传统理论账户是对完成SAT的潜在神经调整的不完整描述,提供了一种新的机制对速度准确性权衡决策机制的机制陈述,并突出了关于模型和神经蓄能器的身份的问题。

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