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Vladimir Guzov

4 accepted papers

2025

EgoLM: Multi-Modal Language Model of Egocentric Motions

CVPR 2025poster

As wearable devices become more prevalent, understanding the user's motion is crucial for improving contextual AI systems. We introduce EgoLM, a versatile framework designed for egocentric motion understanding using multi-modal data. EgoLM integrates the rich contextual information from egocentric v…

Cited by 4SourcePDFScholar
2024

Nymeria: A Massive Collection of Egocentric Multi-modal Human Motion in the Wild

ECCV 2024poster

"We introduce - a large-scale, diverse, richly annotated human motion dataset collected in the wild with multiple multimodal egocentric devices. The dataset comes with a) full-body ground-truth motion; b) multiple multimodal egocentric data from Project Aria devices with videos, eye tracking, IMUs a…

2022

COUCH: Towards Controllable Human-Chair Interactions

ECCV 2022poster

"Humans can interact with an object in the scene in many different ways, which are often associated with different modalities of contacting with the object. This creates a highly complex motion space that can be difficult to learn, particularly when synthesizing such human interactions in a controll…

Cited by 108SourcePDFScholar
2021

Human POSEitioning System (HPS): 3D Human Pose Estimation and Self-Localization in Large Scenes From Body-Mounted Sensors

CVPR 2021poster

We introduce (HPS) Human POSEitioning System, a method to recover the full 3D pose of a human registered with a 3D scan of the surrounding environment using wearable sensors. Using IMUs attached at the body limbs and a head mounted camera looking outwards, HPS fuses camera based self-localization wi…

Cited by 171PDFcodeScholar