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在变化盲视任务中对人类注视策略的神经约束建模。

Neurally-constrained modeling of human gaze strategies in a change blindness task.

机构信息

Centre for Neuroscience, Indian Institute of Science, Bangalore, India.

Computer Science and Automation, Indian Institute of Science, Bangalore, India.

出版信息

PLoS Comput Biol. 2021 Aug 24;17(8):e1009322. doi: 10.1371/journal.pcbi.1009322. eCollection 2021 Aug.

Abstract

Despite possessing the capacity for selective attention, we often fail to notice the obvious. We investigated participants' (n = 39) failures to detect salient changes in a change blindness experiment. Surprisingly, change detection success varied by over two-fold across participants. These variations could not be readily explained by differences in scan paths or fixated visual features. Yet, two simple gaze metrics-mean duration of fixations and the variance of saccade amplitudes-systematically predicted change detection success. We explored the mechanistic underpinnings of these results with a neurally-constrained model based on the Bayesian framework of sequential probability ratio testing, with a posterior odds-ratio rule for shifting gaze. The model's gaze strategies and success rates closely mimicked human data. Moreover, the model outperformed a state-of-the-art deep neural network (DeepGaze II) with predicting human gaze patterns in this change blindness task. Our mechanistic model reveals putative rational observer search strategies for change detection during change blindness, with critical real-world implications.

摘要

尽管我们具有选择性注意的能力,但我们常常无法注意到明显的事物。我们调查了参与者(n=39)在变化盲视实验中未能检测到显著变化的情况。令人惊讶的是,参与者的变化检测成功率差异超过两倍。这些差异不能轻易地用扫视路径或注视的视觉特征的差异来解释。然而,两个简单的注视指标——注视持续时间的平均值和扫视幅度的方差——系统地预测了变化检测的成功率。我们使用基于贝叶斯序列概率比检验框架的神经约束模型,以及用于转移注视的后验优势比规则,探索了这些结果的机制基础。该模型的注视策略和成功率与人类数据非常吻合。此外,该模型在预测人类在这种变化盲视任务中的注视模式方面优于最先进的深度神经网络(DeepGaze II)。我们的机制模型揭示了变化盲视期间用于变化检测的潜在理性观察者搜索策略,具有关键的现实世界意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4d9d/8478260/2a70e375418c/pcbi.1009322.g001.jpg

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