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20232026
most citedSwiftBrush v2: Make Your One-step Diffusion Model Better Than Its Teacher

1 citations · 1 across the 3 of their papers we have counts for

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cs.CV2026

Cross-Space Distillation: Teaching One-Step Students with Modern Diffusion Teachers

Anh Nguyen, Ngan Nguyen, Duc Vu +11

Modern one-step diffusion models achieve impressive quality through distribution-based timestep distillation. Yet, they rely on a critical assumption: Teacher and Student must inha…

cs.CV2025

Improved Training Technique for Shortcut Models

Anh Nguyen, Viet Nguyen, Duc Vu +4

Shortcut models represent a promising, non-adversarial paradigm for generative modeling, uniquely supporting one-step, few-step, and multi-step sampling from a single trained netwo…

cs.CV2024

Self-Corrected Flow Distillation for Consistent One-Step and Few-Step Text-to-Image Generation

Quan Dao, Hao Phung, Trung Dao +2

Flow matching has emerged as a promising framework for training generative models, demonstrating impressive empirical performance while offering relative ease of training compared…

cs.CV2024

Supercharged One-step Text-to-Image Diffusion Models with Negative Prompts

Viet Nguyen, Anh Nguyen, Trung Dao +4

The escalating demand for real-time image synthesis has driven significant advancements in one-step diffusion models, which inherently offer expedited generation speeds compared to…

cs.CV2024

DiMSUM: Diffusion Mamba -- A Scalable and Unified Spatial-Frequency Method for Image Generation

Hao Phung, Quan Dao, Trung Dao +3

We introduce a novel state-space architecture for diffusion models, effectively harnessing spatial and frequency information to enhance the inductive bias towards local features in…

cs.CV20241 cited

SwiftBrush v2: Make Your One-step Diffusion Model Better Than Its Teacher

Trung Dao, Thuan Hoang Nguyen, Thanh Le +4

In this paper, we aim to enhance the performance of SwiftBrush, a prominent one-step text-to-image diffusion model, to be competitive with its multi-step Stable Diffusion counterpa…