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Guoqing Jin

6 accepted papers

2026

DiasR: Dual-Modal Identity-Anchored Sparse Routing for Efficient Multi-Subject Video Generation

ICML 2026poster

Personalized multi-subject video generation is a promising direction within the field of controllable video generation; however, existing methods face challenges in maintaining cross-frame identity consistency and incur high computational overhead. To address these issues, we propose DiasR, an effic…

Cited by 0SourceScholar
2026

Reason2Attack: Jailbreaking Text-to-Image Models via LLM Reasoning

AAAI 2026technical

Text-to-Image (T2I) models typically deploy safety mechanisms to prevent the generation of sensitive images. Unfortunately, recent jailbreaking attack methods manually design instructions for the LLM to generate adversarial prompts, which effectively exposing safety vulnerabilities of T2I models.

Cited by 0SourcePDFScholar
2024

Feature-Adaptive and Data-Scalable In-Context Learning

ACL 2024long

In-context learning (ICL), which promotes inference with several demonstrations, has become a widespread paradigm to stimulate LLM capabilities for downstream tasks. Due to context length constraints, it cannot be further improved in spite of more training data, and general features directly from LL…

2024

Towards Balanced Alignment: Modal-Enhanced Semantic Modeling for Video Moment Retrieval

AAAI 2024technical

Video Moment Retrieval (VMR) aims to retrieve temporal segments in untrimmed videos corresponding to a given language query by constructing cross-modal alignment strategies. However, these existing strategies are often sub-optimal since they ignore the modality imbalance problem, i.e., the semantic…

2019

APE-GAN: Adversarial Perturbation Elimination with GAN

ICASSP 2019accepted

Although Deep Neural Networks could achieve state-of-the-art performance while recongnizing images, they often suffer a tremendous defeat from adversarial examples-inputs generated by utilizing imperceptible but intentional perturbations to samples from the datasets. So far, very few methods have pr…

Cited by 0SourceScholar