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  1.  94
    Action understanding as inverse planning.Chris L. Baker, Rebecca Saxe & Joshua B. Tenenbaum - 2009 - Cognition 113 (3):329-349.
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  2.  28
    Inferring the intentional states of autonomous virtual agents.Peter C. Pantelis, Chris L. Baker, Steven A. Cholewiak, Kevin Sanik, Ari Weinstein, Chia-Chien Wu, Joshua B. Tenenbaum & Jacob Feldman - 2014 - Cognition 130 (3):360-379.
  3. Cause and intent: Social reasoning in causal learning.Noah D. Goodman, Chris L. Baker & Joshua B. Tenenbaum - 2009 - In N. A. Taatgen & H. van Rijn (eds.), Proceedings of the 31st Annual Conference of the Cognitive Science Society. pp. 2759--2764.
     
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  4.  18
    The Cognitive Architecture of Perceived Animacy: Intention, Attention, and Memory.Tao Gao, Chris L. Baker, Ning Tang, Haokui Xu & Joshua B. Tenenbaum - 2019 - Cognitive Science 43 (8):e12775.
    Human vision supports social perception by efficiently detecting agents and extracting rich information about their actions, goals, and intentions. Here, we explore the cognitive architecture of perceived animacy by constructing Bayesian models that integrate domain‐specific hypotheses of social agency with domain‐general cognitive constraints on sensory, memory, and attentional processing. Our model posits that perceived animacy combines a bottom–up, feature‐based, parallel search for goal‐directed movements with a top–down selection process for intent inference. The interaction of these architecturally distinct processes makes perceived (...)
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  5.  38
    Rational Inference of Beliefs and Desires From Emotional Expressions.Yang Wu, Chris L. Baker, Joshua B. Tenenbaum & Laura E. Schulz - 2018 - Cognitive Science 42 (3):850-884.
    We investigated people's ability to infer others’ mental states from their emotional reactions, manipulating whether agents wanted, expected, and caused an outcome. Participants recovered agents’ desires throughout. When the agent observed, but did not cause the outcome, participants’ ability to recover the agent's beliefs depended on the evidence they got. When the agent caused the event, participants’ judgments also depended on the probability of the action ; when actions were improbable given the mental states, people failed to recover the agent's (...)
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  6. A Model-Based Goal-Directed Bayesian Framework for Imitation Learning in Humans and Machines.Aaron P. Shon, David B. Grimes, Chris L. Baker, Rajesh Pn Rao & Andrew N. Meltzoff - forthcoming - Cognitive Science.
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