Papers › SPA: A Graph Spectral Alignment Perspective for Domain Adaptation

SPA: A Graph Spectral Alignment Perspective for Domain Adaptation

26 Oct 2023NeurIPS 2023 11arXiv:2310.17594archive 2025-07-28

Unsupervised domain adaptation (UDA) is a pivotal form in machine learning to extend the in-domain model to the distinctive target domains where the data distributions differ. Most prior works focus on capturing the inter-domain transferability but largely overlook rich intra-domain structures, which empirically results in even worse discriminability. In this work, we introduce a novel graph SPectral Alignment (SPA) framework to tackle the tradeoff. The core of our method is briefly condensed as follows: (i)-by casting the DA problem to graph primitives, SPA composes a coarse graph alignment mechanism with a novel spectral regularizer towards aligning the domain graphs in eigenspaces; (ii)-we further develop a fine-grained message propagation module -- upon a novel neighbor-aware self-training mechanism -- in order for enhanced discriminability in the target domain. On standardized benchmarks, the extensive experiments of SPA demonstrate that its performance has surpassed the existing cutting-edge DA methods. Coupled with dense model analysis, we conclude that our approach indeed possesses superior efficacy, robustness, discriminability, and transferability. Code and data are available at: https://github.com/CrownX/SPA.

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1ran · violated contract
4ran · our draft was wrong
1ran · fixture could not drive it
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laplacian_ crownx/spa/code/train_uda.py community (archive-listed) ran · our draft was wrong no licence file found · pointer only · 1526ca03298c4252 · report
calc_coeff CrownX/SPA/code/utils.py community (archive-listed) unverified no licence file found · pointer only · e352afa5762c5a6b · report
svd_loss_ crownx/spa/code/train_uda.py community (archive-listed) unverified no licence file found · pointer only · 86fca82c9b711e8b · report

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Domain AdaptationSingle Particle AnalysisUnsupervised Domain Adaptation

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