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Tianshi Cao

6 accepted papers

2026

ChronoEdit: Towards Temporal Reasoning for In-Context Image Editing and World Simulation

ICLR 2026poster

Recent advances in large generative models have significantly advanced image editing and in-context image generation, yet a critical gap remains in ensuring physical consistency, where edited objects must remain coherent. This capability is especially vital for world simulation related tasks. In thi…

Cited by 0SourcecodeScholar
2024

LATTE3D: Large-scale Amortized Text-To-Enhanced3D Synthesis

ECCV 2024poster

"Recent text-to-3D generation approaches produce impressive 3D results but require time-consuming optimization that can take up to an hour per prompt. Amortized methods like ATT3D optimize multiple prompts simultaneously to improve efficiency, enabling fast text-to-3D synthesis. However, they cannot…

2023

TexFusion: Synthesizing 3D Textures with Text-Guided Image Diffusion Models

ICCV 2023oral

We present TexFusion(Texture Diffusion), a new method to synthesize textures for given 3D geometries, using only large-scale text-guided image diffusion models. In contrast to recent works that leverage 2D text-to-image diffusion models to distill 3D objects using a slow and fragile optimization pro…

Cited by 99PDFcodeScholar
2021

Don’t Generate Me: Training Differentially Private Generative Models with Sinkhorn Divergence

NeurIPS 2021poster

Although machine learning models trained on massive data have led to breakthroughs in several areas, their deployment in privacy-sensitive domains remains limited due to restricted access to data. Generative models trained with privacy constraints on private data can sidestep this challenge, providi…

Cited by 83SourcePDFScholar
2021

Scalable Neural Data Server: A Data Recommender for Transfer Learning

NeurIPS 2021poster

Absence of large-scale labeled data in the practitioner's target domain can be a bottleneck to applying machine learning algorithms in practice. Transfer learning is a popular strategy for leveraging additional data to improve the downstream performance, but finding the most relevant data to transfe…

Cited by 8SourcePDFScholar