JOURNAL ARTICLE

Task-Specific Preconditioner for Cross-Domain Few-Shot Learning

Suhyun KangJungwon ParkWonseok LeeWonjong Rhee

Year: 2025 Journal:   Proceedings of the AAAI Conference on Artificial Intelligence Vol: 39 (17)Pages: 17760-17769   Publisher: Association for the Advancement of Artificial Intelligence

Abstract

Cross-Domain Few-Shot Learning (CDFSL) methods typically parameterize models with task-agnostic and task-specific parameters. To adapt task-specific parameters, recent approaches have utilized fixed optimization strategies, despite their potential sub-optimality across varying domains or target tasks. To address this issue, we propose a novel adaptation mechanism called Task-Specific Preconditioned gradient descent (TSP). Our method first meta-learns Domain-Specific Preconditioners (DSPs) that capture the characteristics of each meta-training domain, which are then linearly combined using task-coefficients to form the Task-Specific Preconditioner. The preconditioner is applied to gradient descent, making the optimization adaptive to the target task. We constrain our preconditioners to be positive definite, guiding the preconditioned gradient toward the direction of steepest descent. Empirical evaluations on the Meta-Dataset show that TSP achieves state-of-the-art performance across diverse experimental scenarios.

Keywords:
Shot (pellet) Task (project management) Preconditioner Computer science Domain (mathematical analysis) Artificial intelligence Mathematics Chemistry Algorithm Engineering Systems engineering Mathematical analysis

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0.88
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Citation History

Topics

Geophysical Methods and Applications
Physical Sciences →  Engineering →  Ocean Engineering
Machine Learning and ELM
Physical Sciences →  Computer Science →  Artificial Intelligence
Domain Adaptation and Few-Shot Learning
Physical Sciences →  Computer Science →  Artificial Intelligence

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