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Direct inversion: Boosting diffusion-based edit- ing with 3 lines of code.arXiv preprint arXiv:2310.01506

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Imagine Before You Draw: Visual Prompt Engineering for Image Generation

cs.CV · 2026-06-03 · unverdicted · novelty 7.0

VPE inserts an internal autoregressive visual semantic token generation step to guide image token production in unified models, reporting faster convergence, higher quality, and superior editing preservation (PSNR 26.76 vs 19.92) versus external alternatives.

Prompt-Guided Image Editing with Masked Logit Nudging in Visual Autoregressive Models

cs.CV · 2026-04-16 · unverdicted · novelty 7.0

Masked Logit Nudging aligns visual autoregressive model logits with source token maps under target prompts inside cross-attention masks, delivering top image editing results on PIE benchmarks and strong reconstructions on COCO and OpenImages while running faster than diffusion approaches.

RewardFlow: Generate Images by Optimizing What You Reward

cs.CV · 2026-04-09 · unverdicted · novelty 7.0

RewardFlow unifies differentiable rewards including a new VQA-based one and uses a prompt-aware adaptive policy with Langevin dynamics to achieve state-of-the-art image editing and compositional generation.

Delta Rectified Flow Sampling for Text-to-Image Editing

cs.CV · 2025-09-01 · unverdicted · novelty 7.0

DRFS is a new inversion-free editing technique for rectified flow models that models source-target velocity discrepancies and applies a time-dependent shift to improve fidelity and unify prior methods like DDS and FlowEdit.

Training-free image inversion for one-step diffusion models

cs.CV · 2026-05-31 · unverdicted · novelty 6.0

TFinv proposes iterative noise alignment and suffix learning to enable training-free inversion and editing for one-step diffusion models, achieving SOTA performance and higher efficiency than multistep methods.

Semantic Granularity Navigation in Image Editing

cs.CV · 2026-05-20 · unverdicted · novelty 4.0 · 2 refs

NaviEdit is a training-free inference-time controller that decouples edit progress from model scale traversal in diffusion-based image editing via self-consistency, reporting average gains across editors and backbones.

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