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Tianyi Liang

6 accepted papers

2026

Consensus Entropy: Harnessing Multi-VLM Agreement for Self-Verifying and Self-Improving OCR

CVPR 2026

Optical Character Recognition (OCR) is fundamental to Vision-Language Models (VLMs) and high-quality data generation for LLM training. Yet, despite progress in average OCR accuracy, state-of-the-art VLMs still struggle with detecting sample-level errors and lack effective unsupervised quality contro

Cited by 0SourcecodeScholar
2026

MPJudge: Towards Perceptual Assessment of Music-Induced Paintings

AAAI 2026technical

Music-induced painting is a unique artistic practice, where visual artworks are created under the influence of music. Evaluating whether a painting faithfully reflects the music that inspired it poses a challenging perceptual assessment task. Existing methods primarily rely on emotion recognition mo

Cited by 0SourcePDFScholar
2026

Thinking with Video: Video Generation as a Promising Multimodal Reasoning Paradigm

CVPR 2026

The "Thinking with Text" and "Thinking with Images" paradigms significantly improve the reasoning abilities of large language models (LLMs) and Vision-Language Models (VLMs). However, these paradigms have inherent limitations. (1) Images capture only single moments and fail to represent dynamic proc

Cited by 0SourcecodeScholar
2025

CritiQ: Mining Data Quality Criteria from Human Preferences

ACL 2025long

Language model heavily depends on high-quality data for optimal performance. Existing approaches rely on manually designed heuristics, the perplexity of existing models, training classifiers, orcareful prompt engineering, which require significant expert experience and human annotation effort while…

2025

TextCenGen: Attention-Guided Text-Centric Background Adaptation for Text-to-Image Generation

ICML 2025poster

Text-to-image (T2I) generation has made remarkable progress in producing high-quality images, but a fundamental challenge remains: creating backgrounds that naturally accommodate text placement without compromising image quality. This capability is non-trivial for real-world applications like graph…

2024

SBM: Smoothness-Based Minimization for Domain Generalization

ICASSP 2024accepted

In topical domain generalization (DG), trained models are asked to perform well on an unknown target domain with different data statistics. In order to improve domain generalization, adversarial learning has proven to be one of the most effective methods. Existing approaches, however, rely primarily…

Cited by 0SourceScholar