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However, existing computational models supporting this idea have yet to reproduce the high capacity of human recognition memory, leaving the hypothesis in question. This article demonstrates that predictive coding, an established model previously shown to effectively support representation learning and memory, can also naturally discriminate novelty with high capacity. The predictive coding model includes neurons encoding prediction errors, and we show that these neurons produce higher activity for novel stimuli, so that the novelty can be decoded from their activity. Additionally, hierarchical predictive coding networks detect novelty at different levels of abstraction within the hierarchy, from low-level sensory features like arrangements of pixels to high-level semantic features like object identities. Overall, based on predictive coding, this article establishes a unified framework that brings together novelty detection, associative memory, and representation learning, demonstrating that a single model can capture these various cognitive functions.<\/jats:p>","DOI":"10.1162\/neco_a_01769","type":"journal-article","created":{"date-parts":[[2025,7,8]],"date-time":"2025-07-08T13:23:39Z","timestamp":1751981019000},"page":"1373-1408","update-policy":"https:\/\/doi.org\/10.1162\/mitpressjournals.corrections.policy","source":"Crossref","is-referenced-by-count":3,"title":["Predictive Coding Model Detects Novelty on Different Levels of Representation Hierarchy"],"prefix":"10.1162","volume":"37","author":[{"given":"T. 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