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20242026
most citedGMKF: Generalized Moment Kalman Filter for Polynomial Systems with Arbitrary Noise

2 citations · 2 across the 7 of their papers we have counts for

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cs.CV2026

Remember with Confidence: Uncertainty Quantification for Spatio-temporal Memory with Probabilistic Guarantees

Harry Zhang, Nicolas Gorlo, Luca Carlone

Long-horizon robot operation requires spatio-temporal memory to record the environment state and recall it for downstream reasoning. Scene graphs and retrieval-augmented systems gr…

cs.CV2026

FUSE: Quantifying Uncertainty in Vision-Language Models by Bayesian Fusing Epistemic and Aleatoric Uncertainty

Harry Zhang, Luca Carlone

Vision-language models (VLMs) are playing an increasingly important role across multiple domains. In many applications, such as robotics, it is crucial to quantify the uncertainty…

cs.CV2025

H2OFlow: Grounding Human-Object Affordances with 3D Generative Models and Dense Diffused Flows

Harry Zhang, Luca Carlone

Understanding how humans interact with the surrounding environment, and specifically reasoning about object interactions and affordances, is a critical challenge in computer vision…

cs.CV2024

CUPS: Improving Human Pose-Shape Estimators with Conformalized Deep Uncertainty

Harry Zhang, Luca Carlone

We introduce CUPS, a novel method for learning sequence-to-sequence 3D human shapes and poses from RGB videos with uncertainty quantification. To improve on top of prior work, we d…

cs.CV2024

CRISP: Object Pose and Shape Estimation with Test-Time Adaptation

Jingnan Shi, Rajat Talak, Harry Zhang +2

We consider the problem of estimating object pose and shape from an RGB-D image. Our first contribution is to introduce CRISP, a category-agnostic object pose and shape estimation…

cs.CV2024

CHAMP: Conformalized 3D Human Multi-Hypothesis Pose Estimators

Harry Zhang, Luca Carlone

We introduce CHAMP, a novel method for learning sequence-to-sequence, multi-hypothesis 3D human poses from 2D keypoints by leveraging a conditional distribution with a diffusion mo…