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Human Mesh Modeling for Anny Body

About

Parametric body models provide the structural basis for many human-centric tasks, yet existing models often rely on costly 3D scans and learned shape spaces that are proprietary and demographically narrow. We introduce Anny, a simple, fully differentiable, and scan-free human body model grounded in anthropometric knowledge from the MakeHuman community. Anny defines a continuous, interpretable shape space, where phenotype parameters (e.g. gender, age, height, weight) control blendshapes spanning a wide range of human forms--across ages (from infants to elders), body types, and proportions. Calibrated using WHO population statistics, it provides realistic and demographically grounded human shape variation within a single unified model. Thanks to its openness and semantic control, Anny serves as a versatile foundation for 3D human modeling--supporting millimeter-accurate scan fitting, controlled synthetic data generation, and Human Mesh Recovery (HMR). We further introduce Anny-One, a collection of 800k photorealistic images generated with Anny, showing that despite its simplicity, HMR models trained with Anny can match the performance of those trained with scan-based body models. The Anny body model and its code are released under the Apache 2.0 license, making Anny an accessible foundation for human-centric 3D modeling.

Romain Br\'egier, Gu\'enol\'e Fiche, Laura Bravo-S\'anchez, Thomas Lucas, Matthieu Armando, Philippe Weinzaepfel, Gr\'egory Rogez, Fabien Baradel• 2025

Related benchmarks

TaskDatasetResultRank
3D ReconstructionCMU Panoptic-Toddler (test)
MPJPE (mm)102.2
12
3D ReconstructionCMU Panoptic Toddler
Root MPJPE (mm)102.2
6
2D Human Pose EstimationRelative Human (test)
mPCKh (0.6)65.39
5
Human Attribute PredictionRelative Human (test)
Age F1 Score23.29
5
Relative Depth EstimationRelative Human (test)
PCDR 0.2 (overall)59.79
5
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