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Nikolaus Demmel

12 accepted papers

2023

Power Bundle Adjustment for Large-Scale 3D Reconstruction

CVPR 2023poster

We introduce Power Bundle Adjustment as an expansion type algorithm for solving large-scale bundle adjustment problems. It is based on the power series expansion of the inverse Schur complement and constitutes a new family of solvers that we call inverse expansion methods. We theoretically justify t…

2022

DirectTracker: 3D Multi-Object Tracking Using Direct Image Alignment and Photometric Bundle Adjustment

IROS 2022poster

Direct methods have shown excellent performance in the applications of visual odometry and SLAM. In this work we propose to leverage their effectiveness for the task of 3D multi-object tracking. To this end, we propose DirectTracker, a framework that effectively combines direct image alignment for t…

Cited by 5SourceScholar
2022

The Probabilistic Normal Epipolar Constraint for Frame-to-Frame Rotation Optimization Under Uncertain Feature Positions

CVPR 2022poster

The estimation of the relative pose of two camera views is a fundamental problem in computer vision. Kneip et al. proposed to solve this problem by introducing the normal epipolar constraint (NEC). However, their approach does not take into account uncertainties, so that the accuracy of the estimate…

Cited by 11PDFScholar
2021

Square Root Bundle Adjustment for Large-Scale Reconstruction

CVPR 2021poster

We propose a new formulation for the bundle adjustment problem which relies on nullspace marginalization of landmark variables by QR decomposition. Our approach, which we call square root bundle adjustment, is algebraically equivalent to the commonly used Schur complement trick, improves the numeric…

Cited by 27PDFScholar
2021

Square Root Marginalization for Sliding-Window Bundle Adjustment

ICCV 2021poster

In this paper we propose a novel square root sliding-window bundle adjustment suitable for real-time odometry applications. The square root formulation pervades three major aspects of our optimization-based sliding-window estimator: for bundle adjustment we eliminate landmark variables with nullspac…

Cited by 19PDFScholar
2020

Efficient Derivative Computation for Cumulative B-Splines on Lie Groups

CVPR 2020oral

Continuous-time trajectory representation has recently gained popularity for tasks where the fusion of high-frame-rate sensors and multiple unsynchronized devices is required. Lie group cumulative B-splines are a popular way of representing continuous trajectories without singularities. They have be…

Cited by 103PDFcodeScholar
2020

Visual-Inertial Mapping With Non-Linear Factor Recovery

RA-L 2020

Cameras and inertial measurement units are complementary sensors for ego-motion estimation and environment mapping. Their combination makes visual-inertial odometry (VIO) systems more accurate and robust. For globally consistent mapping, however, combining visual and inertial information is not stra

Cited by 228SourceScholar
2019

Rolling-Shutter Modelling for Direct Visual-Inertial Odometry

IROS 2019poster

We present a direct visual-inertial odometry (VIO) method which estimates the motion of the sensor setup and sparse 3D geometry of the environment based on measurements from a rolling-shutter camera and an inertial measurement unit (IMU). The visual part of the system performs a photometric bundle a…

Cited by 45SourceScholar
2018

Direct Sparse Odometry With Rolling Shutter

ECCV 2018poster

Neglecting the effects of rolling-shutter cameras for visual odometry (VO) severely degrades accuracy and robustness. In this paper, we propose a novel direct monocular VO method that incorporates a rolling-shutter model. Our approach extends direct sparse odometry which performs direct bundle adjus…

Cited by 56SourcePDFScholar
2018

The TUM VI Benchmark for Evaluating Visual-Inertial Odometry

IROS 2018poster

Visual odometry and SLAM methods have a large variety of applications in domains such as augmented reality or robotics. Complementing vision sensors with inertial measurements tremendously improves tracking accuracy and robustness, and thus has spawned large interest in the development of visual-ine…

Cited by 520SourceScholar