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BEHAVIOR Vision Suite: Customizable Dataset Generation via Simulation

15 May 2024
Yunhao Ge
Yihe Tang
Jiashu Xu
Cem Gokmen
Chengshu Li
Wensi Ai
B. Martinez
Arman Aydin
Mona Anvari
Ayush K Chakravarthy
Hong-Xing Yu
J. Wong
S. Srivastava
Sharon Lee
S. Zha
Laurent Itti
Yunzhu Li
Roberto Martín-Martín
Miao Liu
Pengchuan Zhang
Ruohan Zhang
Fei-Fei Li
Jiajun Wu
    VGen
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Abstract

The systematic evaluation and understanding of computer vision models under varying conditions require large amounts of data with comprehensive and customized labels, which real-world vision datasets rarely satisfy. While current synthetic data generators offer a promising alternative, particularly for embodied AI tasks, they often fall short for computer vision tasks due to low asset and rendering quality, limited diversity, and unrealistic physical properties. We introduce the BEHAVIOR Vision Suite (BVS), a set of tools and assets to generate fully customized synthetic data for systematic evaluation of computer vision models, based on the newly developed embodied AI benchmark, BEHAVIOR-1K. BVS supports a large number of adjustable parameters at the scene level (e.g., lighting, object placement), the object level (e.g., joint configuration, attributes such as "filled" and "folded"), and the camera level (e.g., field of view, focal length). Researchers can arbitrarily vary these parameters during data generation to perform controlled experiments. We showcase three example application scenarios: systematically evaluating the robustness of models across different continuous axes of domain shift, evaluating scene understanding models on the same set of images, and training and evaluating simulation-to-real transfer for a novel vision task: unary and binary state prediction. Project website: https://behavior-vision-suite.github.io/

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