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公开(公告)号:US20250157008A1
公开(公告)日:2025-05-15
申请号:US18949522
申请日:2024-11-15
Applicant: Google LLC
Inventor: Tingbo Hou , Yanwu Xu , Yang Zhao , Zhisheng Xiao
Abstract: Provided is a one-step text-to-image generative model, which represents a fusion of GAN and diffusion model elements. In particular, despite the promising outcomes of prior diffusion GAN hybrid models, achieving one-step sampling and extending their utility to text-to-image generation remains a complex challenge. The present disclosure provides a number of innovative techniques to enhance diffusion GAN models, resulting in an ultra-fast text-to-image model capable of producing high-quality images in a single sampling step.
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公开(公告)号:US20250165756A1
公开(公告)日:2025-05-22
申请号:US18949875
申请日:2024-11-15
Applicant: Google LLC
Inventor: Yang Zhao , Yanwu Xu , Zhisheng Xiao , Tingbo Hou
IPC: G06N3/0475 , G06N3/0464
Abstract: Methods, systems, and apparatus, including computer programs encoded on computer storage media, for generating a data item by performing a single-step denoising process using a diffusion model neural network. For example, the data items can be images, videos, audio waveforms, sensor outputs, and so on.
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公开(公告)号:US20230222628A1
公开(公告)日:2023-07-13
申请号:US17572923
申请日:2022-01-11
Applicant: Google LLC
Inventor: Yang Zhao , Yu-Chuan Su , Chun-Te Chu , Yandong Li , Marius Renn , Yukun Zhu , Xuhui Jia , Bradley Ray Green
CPC classification number: G06T5/001 , G06V40/168 , G06T2207/30201 , G06T2207/20081 , G06T2207/20084
Abstract: Systems and methods for training a restoration model can leverage training for two sub-tasks to train the restoration model to generate realistic and identity-preserved outputs. The systems and methods can balance the training of the generation task and the reconstruction task to ensure the generated outputs preserve the identity of the original subject while generating realistic outputs. The systems and methods can further leverage a feature quantization model and skip connections to improve the model output and overall training.
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