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Auteurs principaux: Shakarian, Paulo, Simari, Gerardo I., Bastian, Nathaniel D.
Format: Preprint
Publié: 2025
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Accès en ligne:https://arxiv.org/abs/2502.05398
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author Shakarian, Paulo
Simari, Gerardo I.
Bastian, Nathaniel D.
author_facet Shakarian, Paulo
Simari, Gerardo I.
Bastian, Nathaniel D.
contents Metacognition is the concept of reasoning about an agent's own internal processes, and it has recently received renewed attention with respect to artificial intelligence (AI) and, more specifically, machine learning systems. This paper reviews a hybrid-AI approach known as "error detecting and correcting rules" (EDCR) that allows for the learning of rules to correct perceptual (e.g., neural) models. Additionally, we introduce a probabilistic framework that adds rigor to prior empirical studies, and we use this framework to prove results on necessary and sufficient conditions for metacognitive improvement, as well as limits to the approach. A set of future
format Preprint
id arxiv_https___arxiv_org_abs_2502_05398
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Probabilistic Foundations for Metacognition via Hybrid-AI
Shakarian, Paulo
Simari, Gerardo I.
Bastian, Nathaniel D.
Artificial Intelligence
Metacognition is the concept of reasoning about an agent's own internal processes, and it has recently received renewed attention with respect to artificial intelligence (AI) and, more specifically, machine learning systems. This paper reviews a hybrid-AI approach known as "error detecting and correcting rules" (EDCR) that allows for the learning of rules to correct perceptual (e.g., neural) models. Additionally, we introduce a probabilistic framework that adds rigor to prior empirical studies, and we use this framework to prove results on necessary and sufficient conditions for metacognitive improvement, as well as limits to the approach. A set of future
title Probabilistic Foundations for Metacognition via Hybrid-AI
topic Artificial Intelligence
url https://arxiv.org/abs/2502.05398