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Lukas Neumann

6 accepted papers

2025

Training-free Neural Architecture Search through Variance of Knowledge of Deep Network Weights

CVPR 2025poster

Deep learning has revolutionized computer vision, but it achieved its tremendous success using deep network architectures which are mostly hand-crafted and therefore likely suboptimal. Neural Architecture Search (NAS) aims to bridge this gap by following a well-defined optimization paradigm which sy…

2022

Lifting 2D Object Locations to 3D by Discounting LiDAR Outliers across Objects and Views

ICRA 2022poster

We present a system for automatic converting of 2D mask object predictions and raw LiDAR point clouds into full 3D bounding boxes of objects. Because the LiDAR point clouds are partial, directly fitting bounding boxes to the point clouds is meaningless. Instead, we suggest that obtaining good result…

Cited by 12SourcecodeScholar
2017

Deep TextSpotter: An End-To-End Trainable Scene Text Localization and Recognition Framework

ICCV 2017poster

A method for scene text localization and recognition is proposed. The novelties include: training of both text detection and recognition in a single end-to-end pass, the structure of the recognition CNN and the geometry of its input layer that preserves the aspect of the text and adapts its resoluti…

Cited by 309PDFcodeScholar