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Amit More

2 accepted papers

2026

Hyperbolic Prototype Learning with Uncertainty-Aware Consistency for Continual Test-Time Segmentation

CVPR 2026

Continual Test-Time Adaptation (CTTA) for semantic segmentation is vital for deploying vision models in dynamic environments with persistent domain shifts. Existing methods often degrade over time as self-supervised updates amplify early prediction errors. We attribute this fragility to a geometric

Cited by 0SourceScholar
2026

Seeing What’s Not There: Negation Understanding Needs More Than Training

ICLR 2026poster

Understanding the negation in a sentence is an important part of compositional understanding and logic in natural language. Many practical AI applications, such as autonomous driving, include precise instruction with negations. For example, following instruction to an AI assistant ”locate a parking…

Cited by 0SourceScholar