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Stefan Popov

8 accepted papers

2023

CAD-Estate: Large-scale CAD Model Annotation in RGB Videos

ICCV 2023poster

We propose a method for annotating videos of complex multi-object scenes with a globally-consistent 3D representation of the objects. We annotate each object with a CAD model from a database, and place it in the 3D coordinate frame of the scene with a 9-DoF pose transformation. Our method is semi-au…

Cited by 7PDFcodeScholar
2023

Estimating Generic 3D Room Structures from 2D Annotations

NeurIPS 2023poster

Indoor rooms are among the most common use cases in 3D scene understanding. Current state-of-the-art methods for this task are driven by large annotated datasets. Room layouts are especially important, consisting of structural elements in 3D, such as wall, floor, and ceiling. However, they are diffi…

2023

NAVI: Category-Agnostic Image Collections with High-Quality 3D Shape and Pose Annotations

NeurIPS 2023poster

Recent advances in neural reconstruction enable high-quality 3D object reconstruction from casually captured image collections. Current techniques mostly analyze their progress on relatively simple image collections where SfM techniques can provide ground-truth (GT) camera poses. We note that SfM te…

2022

RayTran: 3D Pose Estimation and Shape Reconstruction of Multiple Objects from Videos with Ray-Traced Transformers

ECCV 2022poster

"We propose a transformer-based neural network architecture for multi-object 3D reconstruction from RGB videos. It relies on two alternative ways to represent its knowledge: as a global 3D grid of features and an array of view-specific 2D grids. We progressively exchange information between the two…

2020

C-Flow: Conditional Generative Flow Models for Images and 3D Point Clouds

CVPR 2020poster

Flow-based generative models have highly desirable properties like exact log-likelihood evaluation and exact latent-variable inference, however they are still in their infancy and have not received as much attention as alternative generative models. In this paper, we introduce C-Flow, a novel condit…

Cited by 113PDFScholar
2020

CoReNet: Coherent 3D Scene Reconstruction from a Single RGB Image

ECCV 2020poster

Advances in deep learning techniques have allowed recent work to reconstruct the shape of a single object given only one RBG image as input. Building on common encoder-decoder architectures for this task, we propose three extensions: (1) ray-traced skip connections that propagate local 2D informatio…

2018

Revisiting Knowledge Transfer for Training Object Class Detectors

CVPR 2018poster

We propose to revisit knowledge transfer for training object detectors on target classes from weakly supervised training images, helped by a set of source classes with bounding-box annotations. We present a unified knowledge transfer framework based on training a single neural network multi-class ob…

Cited by 89SourcePDFScholar