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WU CHENGJING

4 accepted papers

2026

FlowSeg: Dynamic Semantic Guidance for LLM-Conditioned Segmentation

ICML 2026poster

LLM-conditioned segmentation has recently advanced rapidly by coupling large language models with iterative mask generation frameworks. However, we identify a persistent failure mode in current propose-then-select pipelines. Although high-quality mask candidates are often generated, the final predic…

Cited by 0SourceScholar
2026

Learning Stochastic Bridges for Video Object Removal via Video-to-Video Translation

ICML 2026poster

Existing video object removal methods predominantly rely on diffusion models following a noise-to-data paradigm, where generation starts from uninformative Gaussian noise. This approach discards the rich structural and contextual priors present in the original input video. Consequently, such methods…

Cited by 0SourcecodeScholar
2026

MiVE: Multiscale Vision-language features for reference-guided video Editing

ICML 2026poster

Reference-guided video editing takes a source video, a text instruction, and a reference image as inputs, requiring the model to faithfully apply the instructed edits while preserving original motion and unedited content. Existing methods fall into two paradigms, each with inherent limitations: deco…

Cited by 0SourceScholar
2026

Self-Prompting Diffusion Transformer for Open-Vocabulary Scene Text Edit via In-Context Learning

ICML 2026poster

Scene text editing aims to modify text in a target region of an image while preserving its background style and texture. Existing methods rely solely on image background information while neglecting the visual details of target regions, which discards stylistic features in the original text and esse…

Cited by 0SourceScholar