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Mengjingcheng Mo

4 accepted papers

2026

Breaking the Continuum: Discrete Distribution Learning for Structural MRI Reconstruction

CVPR 2026

Anatomical structures in MRI exhibit strong spatial priors, including well-defined boundaries, low inter-subject variability, and consistent topology. These properties naturally induce clustered patterns in the latent space, which are difficult to capture using conventional continuous generative pri

Cited by 0SourcecodeScholar
2026

Learning to Watch: Active Video Anomaly Understanding via Interleaved Policy Optimization

ICML 2026poster

Video anomaly understanding (VAU) relies on sparse, context-dependent cues. However, existing passive paradigms suffer from observational aliasing, where static sampling fails to disambiguate semantically distinct events. To overcome this, we propose $Anom\text{-}\pi$, a closed-loop framework that r…

Cited by 0SourceScholar
2026

Linguistic Relative Policy Optimization for Video Anomaly Reasoning

ICML 2026poster

Video anomaly detection (VAD) with multimodal large language models has shown strong potential, yet most existing methods still depend on large-scale annotations or expert-designed priors, limiting their ability to acquire anomaly knowledge with as little human intervention as possible. To address t…

Cited by 0SourceScholar
2025

A2Seek: Towards Reasoning-Centric Benchmark for Aerial Anomaly Understanding

NeurIPS 2025poster

While unmanned aerial vehicles (UAVs) offer wide-area, high-altitude coverage for anomaly detection, they face challenges such as dynamic viewpoints, scale variations, and complex scenes. Existing datasets and methods, mainly designed for fixed ground-level views, struggle to adapt to these conditio…

Cited by 0SourcecodeScholar