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On the power of data augmentation for head pose estimation

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Deep learning has been impressively successful in the last decade in predicting human head poses from monocular images. However, for in-the-wild inputs the research community relies predominantly on a single training set, 300W-LP, of semisynthetic nature without many alternatives. This paper focuses on gradual extension and improvement of the data to explore the performance achievable with augmentation and synthesis strategies further. Modeling-wise a novel multitask head/loss design which includes uncertainty estimation is proposed. Overall, the thus obtained models are small, efficient, suitable for full 6 DoF pose estimation, and exhibit very competitive accuracy.

Michael Welter• 2024

Related benchmarks

TaskDatasetResultRank
Head Pose EstimationAFLW 3D 2000 (test)
MAE (Yaw)2.79
44
Face AlignmentAFLW2000-3D (test)
NME (Full height)3.55
29
Head Pose EstimationBiwi Aligned
Yaw Error2.57
6
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