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September 23, 2025ACM Computing Surveys7 citationsOpen Access

Memorization in Deep Learning: A Survey

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JWJiaheng WeiYZYanjun ZhangLZLeo Yu Zhang

Key Points

  • DNNs exhibit memorization tendencies that hinder effective generalization, impacting overall performance.
  • Memorization leads to security vulnerabilities, raising concerns regarding the model's reliability and privacy.
  • A systematic framework is proposed to categorize memorization based on various aspects including evaluation methods.
  • The study highlights the ethical implications of memorization practices in AI development across multiple applications.

Abstract

Deep Learning (DL) powered by Deep Neural Networks (DNNs) has revolutionized various domains, yet understanding the details of DNN decision-making and learning processes remains a significant challenge. Recent investigations have uncovered an interesting memorization phenomenon in which DNNs tend to memorize specific details from examples rather than learning general patterns, affecting model generalization, security, and privacy. This raises critical questions about the nature of generalization in DNNs and their susceptibility to security breaches. In this survey, we present a systematic framework to organize memorization definitions based on the generalization and security/privacy domains and summarize memorization evaluation methods at both the example and model levels. Through a comprehensive literature review, we explore DNN memorization behaviors and their impacts on security and privacy. We also introduce privacy vulnerabilities caused by memorization and the phenomenon of forgetting and explore its connection with memorization. Furthermore, we spotlight various applications leveraging memorization mechanisms. This survey offers the first-in-kind understanding of memorization in DNNs, providing insights into its challenges and opportunities for enhancing AI development while addressing critical ethical concerns.

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Cite This Study

Wei et al. (2025) studied this question.

synapsesocial.com/papers/68d4724731b076d99fa6a83ahttps://doi.org/10.1145/3769076
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