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Lee, Yongjae
Financial Engineering Lab.
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dc.citation.conferencePlace SI -
dc.citation.endPage 122 -
dc.citation.startPage 114 -
dc.citation.title 6th ACM International Conference on AI in Finance, ICAIF 2025 -
dc.contributor.author Lee, Junhyeong -
dc.contributor.author Jeon, Haeun -
dc.contributor.author Bae, Hyunglip -
dc.contributor.author Lee, Yongjae -
dc.date.accessioned 2025-12-29T15:26:57Z -
dc.date.available 2025-12-29T15:26:57Z -
dc.date.created 2025-12-25 -
dc.date.issued 2025-11-14 -
dc.description.abstract Markowitz laid the foundation of portfolio theory through mean-variance optimization (MVO). However, MVO's effectiveness depends on precise estimation of expected returns, variances, and covariances, which are typically uncertain. Machine learning models are increasingly used to estimate these parameters, trained to minimize prediction errors like MSE, which treats errors uniformly across assets. Recent studies show this leads to suboptimal decisions and propose Decision-Focused Learning (DFL), integrating prediction and optimization to improve outcomes. While studies demonstrate DFL's potential to enhance portfolio performance, the mechanisms of how DFL modifies prediction models for MVO remain unexplored. This study investigates how DFL adjusts stock return prediction models to optimize MVO decisions. We show that DFL's gradient tilts MSE-based prediction errors by the inverse covariance matrix ς -
dc.identifier.bibliographicCitation 6th ACM International Conference on AI in Finance, ICAIF 2025, pp.114 - 122 -
dc.identifier.doi 10.1145/3768292.3770423 -
dc.identifier.uri https://scholarworks.unist.ac.kr/handle/201301/89406 -
dc.language 영어 -
dc.publisher Association for Computing Machinery, Inc -
dc.title Return Prediction for Mean-Variance Portfolio Selection: How Decision-Focused Learning Shapes Forecasting Models -
dc.type Conference Paper -
dc.date.conferenceDate 2025-11-15 -

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