Decision of Learning Status Based on Modeling of the Information Measurement of Social Behavioral Tasks in Rhesus Monkeys

S. Lee, J. Rozenblit, K. Gothard
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Abstract

We are interested in identifying the learning status of the social behavioral tasks in the rhesus monkey. In addition, we define the characteristic of stimulus with a numerical quantification. We allow monkeys to interact with individuals of different social status, while we monitor the viewer monkey's behavior by tracking its scan paths. With these observations, we can understand the learning status of this animal via looking behavior analysis on the stimulus. First, the viewer monkey shows different looking patterns among six different classes. Therefore, we can generate different data descriptors of these classes and observe the classification performance of the machine learning algorithm. Second, we design the ground truth model based on the characteristic of each stimulus. We define the distribution of information from the ratio of the face, body, and background area in the stimulus. Lastly, we link them to figure out whether the viewer monkey learned enough about the information in the stimulus.
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基于猕猴社会行为任务信息测量模型的学习状态决策
我们感兴趣的是识别猕猴社会行为任务的学习状态。此外,我们用数值量化的方法定义了刺激的特性。我们允许猴子与不同社会地位的个体互动,同时我们通过跟踪观察猴子的扫描路径来监控它的行为。通过这些观察,我们可以通过观察刺激的行为分析来了解动物的学习状态。首先,观察猴在六个不同的类别中显示不同的外观模式。因此,我们可以为这些类生成不同的数据描述符,并观察机器学习算法的分类性能。其次,我们根据每个刺激的特征设计了真值模型。我们从刺激中面部、身体和背景区域的比例来定义信息的分布。最后,我们将它们联系起来,以确定观看猴子是否对刺激中的信息有足够的了解。
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