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David Caruso

6 accepted papers

2025

Benchmarking Egocentric Visual-Inertial SLAM at City Scale

ICCV 2025poster

Precise 6-DoF simultaneous localization and mapping (SLAM) from onboard sensors is critical for wearable devices capturing egocentric data, which exhibits specific challenges, such as a wider diversity of motions and viewpoints, prevalent dynamic visual content, or long sessions affected by time-var…

Cited by 0SourcePDFScholar
2024

Robust Indoor Localization with Ranging-IMU Fusion

ICRA 2024poster

Indoor wireless ranging localization is a promising approach for low-power and high-accuracy localization of wearable devices. A primary challenge in this domain stems from non-line of sight propagation of radio waves. This study tackles a fundamental issue in wireless ranging: the unpredictability…

Cited by 4SourceScholar
2020

TLIO: Tight Learned Inertial Odometry

RA-L 2020

In this letter we propose a tightly-coupled Extended Kalman Filter framework for IMU-only state estimation. Strap-down IMU measurements provide relative state estimates based on IMU kinematic motion model. However the integration of measurements is sensitive to sensor bias and noise, causing signifi

Cited by 241SourcecodeScholar
2017

Robust indoor/outdoor navigation through magneto-visual-inertial optimization-based estimation

IROS 2017poster

This paper aims to leverage magnetic information from a Magneto-Inertial Measurement Unit - an IMU sensor augmented with an array of magnetometers, called MIMU hereafter - in a vision/inertial navigation system (VINS). This ego-motion estimation problem is formulated as an optimization over a slidin…

Cited by 21SourceScholar