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cs.CV2026

Unifying Active Learning and Semi-Supervised Learning for Medical Image Segmentation

Bahram Jafrasteh, Cheng Wan, Heejong Kim +2

In practical settings, medical image segmentation models are often developed with limited annotated data rather than fully labeled datasets. Training frequently begins in ultra-low…

cs.CV2026

Anatomically Guided Latent Diffusion for Brain MRI Progression Modeling

Cheng Wan, Bahram Jafrasteh, Ehsan Adeli +2

Accurately modeling longitudinal brain MRI progression is crucial for understanding neurodegenerative diseases and predicting individualized structural changes. Existing state-of-t…

cs.CV2025

Synthetic Vasculature and Pathology Enhance Vision-Language Model Reasoning

Chenjun Li, Cheng Wan, Laurin Lux +4

Vision-Language Models (VLMs) offer a promising path toward interpretable medical diagnosis by allowing users to ask about clinical explanations alongside predictions and across di…

cs.CV2025

PRISM-Bench: A Benchmark of Puzzle-Based Visual Tasks with CoT Error Detection

Yusu Qian, Cheng Wan, Chao Jia +3

Multimodal large language models (MLLMs) have achieved remarkable progress on vision-language tasks, yet their reasoning processes remain sometimes unreliable. We introduce PRISM-B…

cs.CV2025

WASABI: A Metric for Evaluating Morphometric Plausibility of Synthetic Brain MRIs

Bahram Jafrasteh, Wei Peng, Cheng Wan +3

Generative models enhance neuroimaging through data augmentation, quality improvement, and rare condition studies. Despite advances in realistic synthetic MRIs, evaluations focus o…

cs.CV2024

RITA: A Real-time Interactive Talking Avatars Framework

Wuxinlin Cheng, Cheng Wan, Yupeng Cao +1

RITA presents a high-quality real-time interactive framework built upon generative models, designed with practical applications in mind. Our framework enables the transformation of…