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Igor Kviatkovsky

6 accepted papers

2026

Scene-VLM: Multimodal Video Scene Segmentation via Vision-Language Models

CVPR 2026

Segmenting long-form videos into semantically coherent scenes is a fundamental task in large-scale video understanding. Existing encoder-based methods are limited by visual-centric biases, classify each shot in isolation without leveraging sequential dependencies, and lack both narrative understandi

Cited by 0SourceScholar
2025

Distilling the Knowledge in Data Pruning

ICML 2025poster

With the increasing size of datasets used for training neural networks, data pruning has gained traction in recent years. However, most current data pruning algorithms are limited in their ability to preserve accuracy compared to models trained on the full data, especially in high pruning regimes. I…

Cited by 11SourcePDFScholar
2025

Group-Aware Reinforcement Learning for Output Diversity in Large Language Models

EMNLP 2025

Large Language Models (LLMs) often suffer from mode collapse, repeatedly generating the same few completions even when many valid answers exist, limiting their diversity across a wide range of tasks. We introduce Group-Aware Policy Optimization (GAPO) , a simple extension of the recent and popular G

2025

LV-MAE: Learning Long Video Representations through Masked-Embedding Autoencoders

ICCV 2025poster

In this work, we introduce long-video masked-embedding autoencoders (LV-MAE), a self-supervised learning framework for long video representation.Our approach treats short- and long-span dependencies as two separate tasks.Such decoupling allows for a more intuitive video processing where short-span s…

Cited by 0SourcePDFScholar