Through the Frequency Lens: Cross-Domain Generalisable Gaze Estimation with Adaptive Modulation
Yang Xu, Yiwei Bao, Feng Lu
Abstract
Deep learning-based gaze estimation methods often exhibit significant performance degradation on unseen target domains. Through systematic frequency-domain analysis, we reveal that face images contain frequency components with distinct contributions: some facilitate cross-domain generalization while others introduce domain-specific interference that impedes it, with both components varying across datasets and constituting a key source of domain gap. Based on these observations, we propose the Frequency-Guided Adaptive Learning framework (FGAL), a novel framework enhancing domain generalization without accessing target domain data. The FGAL consists of two complementary modules: the Adaptive Interference Suppression Module (AISM) and the Spectrum Diversification Module (SDM). AISM adaptively suppresses sample-specific interfering frequency components through learnable modulation maps, while SDM diversifies frequency distribution patterns to enhance robustness against cross-domain variations. Experiments demonstrate that FGAL achieves substantial improvements, outperforming baselines by up to 28.2% and state-of-the-art methods by up to 19.5% across multiple cross-domain settings, demonstrating our framework's potential for broader domain generalization tasks.
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Builds on21
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- Global Filter Networks for Image ClassificationYongming Rao, Wenliang Zhao, Zheng Zhu, Jiwen Lu et al.NeurIPS 2021 · 798 citations
- Gaze360: Physically Unconstrained Gaze Estimation in the WildPetr Kellnhofer, Adrià Recasens, Simon Stent, Wojciech Matusik et al.ICCV 2019 · 469 citations
- Few-Shot Adaptive Gaze EstimationSeonwook Park, Shalini De Mello, Pavlo Molchanov, Umar Iqbal et al.ICCV 2019 · 238 citations
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