الباحثون

Gholamali Aminian

المنشورات 2

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SCOPD: Sparse-Context On-Policy Self-Distillation for Efficient Vision-Language Models

Ahmadreza Jeddi, Enming Zhang, Jasper Gerigk وآخرون · 2026

Reasoning vision-language models (VLMs) process images and videos as long sequences of visual tokens, making inference expensive. Training-free token pruning reduces this cost, but aggressive compression can sharply degrade performance, often attributed to irreversible loss of task-relevant visual information. We show …

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Geometry-Adaptive Mechanisms for Private Synthetic Data

Generating differentially private synthetic data with meaningful Wasserstein utility guarantees is challenging in high dimensions. For datasets of size \(n\) on $[0,1]^d$ with $d\ge2$, existing pure \(\varepsilon\)-differentially private mechanisms achieve expected $1$-Wasserstein error of order $(\varepsilon n)^{-1/d} …

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