Causal Inference Applied to Explaining the Appearance of Shadow Phenomena in an Image

Informatica(2023)

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摘要
Due to the complexity and lack of transparency of recent advances in artificial intelligence, Explainable AI (XAI) emerged as a solution to enable the development of causal image-based models. This study examines shadow detection across several fields, including computer vision and visual effects. Three-fold approaches were used to construct a diverse dataset, integrate structural causal models with shadow detection, and apply interventions simultaneously for detection and inferences. While confounding factors have only a minimal impact on cause identification, this study illustrates how shadow detection enhances understanding of both causal inference and confounding variables.
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关键词
causality,causal inference,causal discovery,structural causal model,shadow detection,XAI
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