DNA-Rendering: A Diverse Neural Actor Repository for High-Fidelity Human-centric Rendering
Wei Cheng, Ruixiang Chen, Wanqi Yin, Siming Fan, Keyu Chen, Honglin, He, Huiwen Luo, Zhongang Cai, Jingbo Wang, Yang Gao, Zhengming Yu, Zhengyu, Lin, Daxuan Ren, Lei Yang, Ziwei Liu, Chen Change Loy, Chen Qian, Wayne Wu,, Dahua Lin, Bo Dai, Kwan-Yee Lin

TL;DR
DNA-Rendering introduces a comprehensive, high-fidelity dataset with diverse human subjects and multi-view data, enabling robust evaluation and advancement of human-centric rendering methods.
Contribution
The paper presents a large-scale, diverse human performance dataset and benchmark for neural actor rendering, addressing the lack of diversity in existing datasets.
Findings
Dataset contains over 1500 subjects and 67.5 million frames.
Rich assets include 2D/3D keypoints, masks, models, and multi-view images.
Benchmark evaluates methods on view synthesis, pose animation, and identity rendering.
Abstract
Realistic human-centric rendering plays a key role in both computer vision and computer graphics. Rapid progress has been made in the algorithm aspect over the years, yet existing human-centric rendering datasets and benchmarks are rather impoverished in terms of diversity, which are crucial for rendering effect. Researchers are usually constrained to explore and evaluate a small set of rendering problems on current datasets, while real-world applications require methods to be robust across different scenarios. In this work, we present DNA-Rendering, a large-scale, high-fidelity repository of human performance data for neural actor rendering. DNA-Rendering presents several alluring attributes. First, our dataset contains over 1500 human subjects, 5000 motion sequences, and 67.5M frames' data volume. Second, we provide rich assets for each subject -- 2D/3D human body keypoints,…
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Code & Models
Videos
DNA-Rendering: A Diverse Neural Actor Repository for High-Fidelity Human-Centric Rendering· youtube
Taxonomy
TopicsAdvanced Neural Network Applications · Generative Adversarial Networks and Image Synthesis · Face recognition and analysis
