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    This study scaled up expressive human pose and shape estimation (EHPS) models using diverse data and large vision transformers. The resulting foundation models achieved state-of-the-art performance and adaptability across various benchmarks.

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    Area of Science:

    • Computer Vision
    • Machine Learning
    • Human-Computer Interaction

    Background:

    • Current expressive human pose and shape estimation (EHPS) methods are limited by confined datasets and architectural innovations.
    • Scaling EHPS is crucial for broader applications but requires extensive data and model capacity.

    Purpose of the Study:

    • To investigate the impact of data and model scaling on expressive human pose and shape estimation (EHPS).
    • To develop generalist foundation models for EHPS that exhibit strong performance and transferability.

    Main Methods:

    • Systematic investigation of 40 EHPS datasets for data scaling, identifying optimal training schemes and data sources.
    • Utilized vision transformers (up to ViT-Huge) and minimalist architectures (SMPLer-X, SMPLest-X) for model scaling.
    • Developed a finetuning strategy to adapt generalist foundation models into specialized ones.

    Main Results:

    • Achieved diminishing returns in EHPS performance at 10 million training instances from diverse sources.
    • Foundation models demonstrated strong performance across diverse benchmarks and excellent transferability to unseen environments.
    • Finetuned models achieved further performance boosts, delivering state-of-the-art results on seven benchmarks including AGORA, UBody, EgoBody, and SynHand.

    Conclusions:

    • Scaling data and models significantly enhances EHPS capabilities, leading to generalist foundation models.
    • These foundation models offer robust performance and adaptability, outperforming previous state-of-the-art methods.
    • The proposed finetuning strategy effectively specializes generalist models for improved performance on specific tasks.