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Reconstructing Perceived and Retrieved Faces from Activity Patterns in Lateral Parietal Cortex

机译:从顶叶外侧皮层的活动模式重构感知和检索的面孔

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摘要

Recent findings suggest that the contents of memory encoding and retrieval can be decoded from the angular gyrus (ANG), a subregion of posterior lateral parietal cortex. However, typical decoding approaches provide little insight into the nature of ANG content representations. Here, we tested whether complex, multidimensional stimuli (faces) could be reconstructed from ANG by predicting underlying face components from fMRI activity patterns in humans. Using an approach inspired by computer vision methods for face recognition, we applied principal component analysis to a large set of face images to generate eigenfaces. We then modeled relationships between eigenface values and patterns of fMRI activity. Activity patterns evoked by individual faces were then used to generate predicted eigenface values, which could be transformed into reconstructions of individual faces. We show that visually perceived faces were reliably reconstructed from activity patterns in occipitotemporal cortex and several lateral parietal subregions, including ANG. Subjective assessment of reconstructed faces revealed specific sources of information (e.g., affect and skin color) that were successfully reconstructed in ANG. Strikingly, we also found that a model trained on ANG activity patterns during face perception was able to successfully reconstruct an independent set of face images that were held in memory. Together, these findings provide compelling evidence that ANG forms complex, stimulus-specific representations that are reflected in activity patterns evoked during perception and remembering.>SIGNIFICANCE STATEMENT Neuroimaging studies have consistently implicated lateral parietal cortex in episodic remembering, but the functional contributions of lateral parietal cortex to memory remain a topic of debate. Here, we used an innovative form of fMRI pattern analysis to test whether lateral parietal cortex actively represents the contents of memory. Using a large set of human face images, we first extracted latent face components (eigenfaces). We then used machine learning algorithms to predict face components from fMRI activity patterns and, ultimately, to reconstruct images of individual faces. We show that activity patterns in a subregion of lateral parietal cortex, the angular gyrus, supported successful reconstruction of perceived and remembered faces, confirming a role for this region in actively representing remembered content.
机译:最近的发现表明,存储器编码和检索的内容可以从角回(ANG)(后外侧顶叶皮层的一个子区域)解码。但是,典型的解码方法几乎无法了解ANG内容表示的性质。在这里,我们测试了是否可以通过根据人类功能磁共振成像活动模式预测潜在的面部成分从ANG重建复杂的多维刺激(面部)。使用受计算机视觉方法启发的人脸识别方法,我们将主成分分析应用于大量人脸图像以生成特征脸。然后,我们对特征脸值与fMRI活动模式之间的关系进行建模。然后,将由单个人脸诱发的活动模式用于生成预测的特征人脸值,该值可以转换为单个人脸的重构。我们表明视觉上可靠的面孔是从枕颞皮层和几个侧顶分区,包括ANG的活动模式可靠地重建。对重建的面孔的主观评估揭示了在ANG中成功重建的特定信息来源(例如,情感和肤色)。令人惊讶的是,我们还发现,在面部感知过程中接受ANG活动模式训练的模型能够成功地重建存储在内存中的独立面​​部图像集。在一起,这些发现提供了令人信服的证据,表明ANG形成了复杂的,特定于刺激的表征,反映在感知和记忆过程中引起的活动模式中。>意义声明神经影像学研究一直将侧顶叶皮层牵涉到情节性记忆中,但是顶叶外侧皮层对记忆的功能贡献仍然是争论的话题。在这里,我们使用了一种创新形式的功能磁共振成像模式分析来测试侧顶叶皮层是否主动代表了记忆的内容。我们使用大量的人脸图像,首先提取了潜在的人脸成分(特征脸)。然后,我们使用机器学习算法从fMRI活动模式预测面部成分,并最终重建单个面部的图像。我们显示,活动模式在顶叶外侧皮层的一个子区域,即角回,支持成功重建感知和记住的面孔,证实了该区域在主动表示记住的内容中的作用。

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