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Alexander Schaefer

7 accepted papers

2019

A Maximum Likelihood Approach to Extract Finite Planes from 3-D Laser Scans

ICRA 2019poster

Whether it is object detection, model reconstruction, laser odometry, or point cloud registration: Plane extraction is a vital component of many robotic systems. In this paper, we propose a strictly probabilistic method to detect finite planes in organized 3-D laser range scans. An agglomerative hie…

Cited by 14SourcecodeScholar
2018

A Maximum Likelihood Approach to Extract Polylines from 2-D Laser Range Scans

IROS 2018poster

Man-made environments such as households, offices, or factory floors are typically composed of linear structures. Accordingly, polylines are a natural way to accurately represent their geometry. In this paper, we propose a novel probabilistic method to extract polylines from raw 2-D laser range scan…

Cited by 13SourcecodeScholar
2018

Detecting Changes in the Environment Based on Full Posterior Distributions Over Real-Valued Grid Maps

RA-L 2018

To detect changes in an environment, one has to decide whether a set of recent observations is incompatible with a set of previous observations. For binary, lidar-based grid maps, this is essentially the case when the laser beam traverses a voxel that has been observed as occupied, or when the beam

Cited by 10SourceScholar
2017

Closed-form full map posteriors for robot localization with lidar sensors

IROS 2017poster

A popular class of lidar-based grid mapping algorithms computes for each map cell the probability that it reflects an incident laser beam. These algorithms typically determine the map as the set of reflection probabilities that maximizes the likelihood of the underlying laser data and do not compute…

Cited by 15SourceScholar