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PSLF: A PID Controller-incorporated Second-order Latent Factor Analysis Model for Recommender System
- Publication Year :
- 2024
-
Abstract
- A second-order-based latent factor (SLF) analysis model demonstrates superior performance in graph representation learning, particularly for high-dimensional and incomplete (HDI) interaction data, by incorporating the curvature information of the loss landscape. However, its objective function is commonly bi-linear and non-convex, causing the SLF model to suffer from a low convergence rate. To address this issue, this paper proposes a PID controller-incorporated SLF (PSLF) model, leveraging two key strategies: a) refining learning error estimation by incorporating the PID controller principles, and b) acquiring second-order information insights through Hessian-vector products. Experimental results on multiple HDI datasets indicate that the proposed PSLF model outperforms four state-of-the-art latent factor models based on advanced optimizers regarding convergence rates and generalization performance.
Details
- Database :
- arXiv
- Publication Type :
- Report
- Accession number :
- edsarx.2409.00448
- Document Type :
- Working Paper