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  1. Face-evoked thoughts.Xingchen Zhou & Rob Jenkins - 2022 - Cognition 218 (C):104955.
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  • Dunning–Kruger effects in face perception.Xingchen Zhou & Rob Jenkins - 2020 - Cognition 203 (C):104345.
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  • Independent contribution of perceptual experience and social cognition to face recognition.Linoy Schwartz & Galit Yovel - 2019 - Cognition 183 (C):131-138.
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  • What makes a face photo a ‘good likeness’?Kay L. Ritchie, Robin S. S. Kramer & A. Mike Burton - 2018 - Cognition 170 (C):1-8.
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  • Multiple-image arrays in face matching tasks with and without memory.Kay L. Ritchie, Robin S. S. Kramer, Mila Mileva, Adam Sandford & A. Mike Burton - 2021 - Cognition 211 (C):104632.
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  • Average faces: How does the averaging process change faces physically and perceptually?Isabelle Bülthoff & Mintao Zhao - 2021 - Cognition 216 (C):104867.
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  • Critical features for face recognition.Naphtali Abudarham, Lior Shkiller & Galit Yovel - 2019 - Cognition 182 (C):73-83.
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  • Face Recognition Depends on Specialized Mechanisms Tuned to View‐Invariant Facial Features: Insights from Deep Neural Networks Optimized for Face or Object Recognition.Naphtali Abudarham, Idan Grosbard & Galit Yovel - 2021 - Cognitive Science 45 (9):e13031.
    Face recognition is a computationally challenging classification task. Deep convolutional neural networks (DCNNs) are brain‐inspired algorithms that have recently reached human‐level performance in face and object recognition. However, it is not clear to what extent DCNNs generate a human‐like representation of face identity. We have recently revealed a subset of facial features that are used by humans for face recognition. This enables us now to ask whether DCNNs rely on the same facial information and whether this human‐like representation depends on (...)
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