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An Event-contrastive Connectome Network for Automatic Assessment of Individual Face Processing and Memory Ability

机译:一种事件对比的连接网络,用于自动评估个体面部处理和内存能力

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Human adapt their behaviors by continuously monitoring one another to function socially in our society. The ability to process face identity from memory is a crucial basic capability. In this work, we propose an event-contrastive connectome network (E-cCN) in representing brain's functional connectivity with contrastive loss to handle layers of fMRI data variabilities exists under different controlled stimuli events to achieve improved automatic assessing of an individual's face processing and memory ability. Our proposed connectome network achieves an overall recognition accuracy of 80.20% and 82.05% in binary classification of separating high versus low scoring subjects on tasks of Taiwanese Face Memory Test (TFMT) and component inverse efficiency score (cIE) respectively. Further, our network embedding representation demonstrate distinct connectivity patterns in key face processing brain regions (ROIs) when comparing between high and low face processing and memory ability.
机译:人类通过在社会中不断监测彼此来调整他们的行为来适应他们的行为。从内存处理面部身份的能力是一个至关重要的基本能力。在这项工作中,我们提出了一个事件对比的连接网络(E-CCN),以代表大脑的功能连通性与对比损失,处理FMRI数据变化的层数存在于不同控制的刺激事件中,以实现改进的自动评估个人的脸部处理和记忆的自动评估能力。我们所提出的连接网络的整体识别准确性为80.20%和82.05%的二进制分类,分离了台湾面部记忆试验(TFMT)和组件逆效率评分(CIE)的任务。此外,我们的网络嵌入表示在比较高低面处理和存储器能力之间的关键面处理脑区域(ROIS)中展示了不同的连通模式。

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