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arXiv (Cornell University)
Efficient Autoregressive Shape Generation via Octree-Based Adaptive Tokenization
April 2025 • Kangle Deng, Hsueh‐Ti Derek Liu, Yong‐Guan Zhu, Xiaoxia Sun, Chong Shang, K. Sham Bhat, Deva Ramanan, Jun-Yan Zhu, Maneesh Agrawala, Tinghui Zhou
Many 3D generative models rely on variational autoencoders (VAEs) to learn compact shape representations. However, existing methods encode all shapes into a fixed-size token, disregarding the inherent variations in scale and complexity across 3D data. This leads to inefficient latent representations that can compromise downstream generation. We address this challenge by introducing Octree-based Adaptive Tokenization, a novel framework that adjusts the dimension of latent representations according to shape complexi…
Computer Science
Artificial Intelligence
Mathematics
Time Series
Machine Learning