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From sparse descriptions of events, observers can make systematic and nuanced predictions of what emotions the people involved will experience. We propose a formal model of emotion prediction in the context of a public high-stakes social dilemma. This model uses inverse planning to infer a person's beliefs and preferences, including social preferences for equity and for maintaining a good reputation. The model then combines these inferred mental contents with the event to compute 'appraisals': whether the situation conformed to the expectations and fulfilled the preferences. We learn functions mapping computed appraisals to emotion labels, allowing the model to match human observers' quantitative predictions of 20 emotions, including joy, relief, guilt and envy. Model comparison indicates that inferred monetary preferences are not sufficient to explain observers' emotion predictions; inferred social preferences are factored into predictions for nearly every emotion. Human observers and the model both use minimal individualizing information to adjust predictions of how different people will respond to the same event. Thus, our framework integrates inverse planning, event appraisals and emotion concepts in a single computational model to reverse-engineer people's intuitive theory of emotions. This article is part of a discussion meeting issue 'Cognitive artificial intelligence'.
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http://dx.doi.org/10.1098/rsta.2022.0047 | DOI Listing |
BMC Pregnancy Childbirth
September 2025
Institute and Policlinic of Occupational and Social Medicine, Faculty of Medicine, Technische Universität Dresden, Fetscherstraße 74, Dresden, 01307, Germany.
Background: Anxiety symptoms during pregnancy are a frequent mental health issue for expectant mothers and fathers. Research revealed that prenatal anxiety symptoms can impact parent-child bonding and child development. This study aims to investigate the prospective relationship between prenatal anxiety symptoms and general child development and whether it is mediated by parent-child bonding.
View Article and Find Full Text PDFBr J Cancer
September 2025
Centre for Cancer Screening, Prevention and Early Diagnosis, Wolfson Institute of Population Health, Queen Mary University of London, London, E1 1HH, UK.
Background: Multi-cancer detection (MCED) blood tests have the potential to screen for early-stage cancers. Understanding how people experience an MCED cancer signal result is vital prior to any future implementation. We explored experiences in a trial context.
View Article and Find Full Text PDFJ Psychiatr Res
September 2025
Laboratory of Biological Psychiatry, Institute of Mental Health, Tianjin Anding Hospital, Mental Health Center of Tianjin Medical University, Tianjin, 300222, China. Electronic address:
Background: The duration of untreated psychosis (DUP) is a critical factor influencing long-term outcome in schizophrenia (SCZ). Its short-term effects during early treatment remain less well characterized.
Methods: We enrolled 300 drug-naïve SCZ patients, of whom 78 completed a 12-week evaluation with comprehensive clinical and functional assessments.
J Med Internet Res
September 2025
Center for Healthy Minds and Department of Counseling Psychology, University of Wisconsin-Madison, Madison, WI, United States.
Background: Ecological momentary assessment (EMA) is increasingly being incorporated into intervention studies to acquire a more fine-grained and ecologically valid assessment of change. The added utility of including relatively burdensome EMA measures in a clinical trial hinges on several psychometric assumptions, including that these measure are (1) reliable, (2) related to but not redundant with conventional self-report measures (convergent and discriminant validity), (3) sensitive to intervention-related change, and (4) associated with a clinically relevant criterion of improvement (criterion validity) above conventional self-report measures (incremental validity).
Objective: This study aimed to evaluate the reliability, validity, and sensitivity to change of conventional self-report versus EMA measures of rumination improvement.
IEEE Trans Pattern Anal Mach Intell
September 2025
In this paper, we propose a novel framework, Combo, for harmonious co-speech holistic 3D human motion generation and efficient customizable adaption. In particular, we identify that one fundamental challenge as the multiple-input-multiple-output (MIMO) nature of the generative model of interest. More concretely, on the input end, the model typically consumes both speech signals and character guidance (e.
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