Alert button
Picture for Jürgen Dickmann

Jürgen Dickmann

Alert button

RadarScenes: A Real-World Radar Point Cloud Data Set for Automotive Applications

Add code
Bookmark button
Alert button
Apr 06, 2021
Ole Schumann, Markus Hahn, Nicolas Scheiner, Fabio Weishaupt, Julius F. Tilly, Jürgen Dickmann, Christian Wöhler

Figure 1 for RadarScenes: A Real-World Radar Point Cloud Data Set for Automotive Applications
Figure 2 for RadarScenes: A Real-World Radar Point Cloud Data Set for Automotive Applications
Figure 3 for RadarScenes: A Real-World Radar Point Cloud Data Set for Automotive Applications
Figure 4 for RadarScenes: A Real-World Radar Point Cloud Data Set for Automotive Applications
Viaarxiv icon

Motion Classification and Height Estimation of Pedestrians Using Sparse Radar Data

Add code
Bookmark button
Alert button
Mar 03, 2021
Markus Horn, Ole Schumann, Markus Hahn, Jürgen Dickmann, Klaus Dietmayer

Figure 1 for Motion Classification and Height Estimation of Pedestrians Using Sparse Radar Data
Figure 2 for Motion Classification and Height Estimation of Pedestrians Using Sparse Radar Data
Figure 3 for Motion Classification and Height Estimation of Pedestrians Using Sparse Radar Data
Figure 4 for Motion Classification and Height Estimation of Pedestrians Using Sparse Radar Data
Viaarxiv icon

Off-the-shelf sensor vs. experimental radar -- How much resolution is necessary in automotive radar classification?

Add code
Bookmark button
Alert button
Jun 09, 2020
Nicolas Scheiner, Ole Schumann, Florian Kraus, Nils Appenrodt, Jürgen Dickmann, Bernhard Sick

Figure 1 for Off-the-shelf sensor vs. experimental radar -- How much resolution is necessary in automotive radar classification?
Figure 2 for Off-the-shelf sensor vs. experimental radar -- How much resolution is necessary in automotive radar classification?
Figure 3 for Off-the-shelf sensor vs. experimental radar -- How much resolution is necessary in automotive radar classification?
Figure 4 for Off-the-shelf sensor vs. experimental radar -- How much resolution is necessary in automotive radar classification?
Viaarxiv icon

Seeing Around Street Corners: Non-Line-of-Sight Detection and Tracking In-the-Wild Using Doppler Radar

Add code
Bookmark button
Alert button
Dec 13, 2019
Nicolas Scheiner, Florian Kraus, Fangyin Wei, Buu Phan, Fahim Mannan, Nils Appenrodt, Werner Ritter, Jürgen Dickmann, Klaus Dietmayer, Bernhard Sick, Felix Heide

Figure 1 for Seeing Around Street Corners: Non-Line-of-Sight Detection and Tracking In-the-Wild Using Doppler Radar
Figure 2 for Seeing Around Street Corners: Non-Line-of-Sight Detection and Tracking In-the-Wild Using Doppler Radar
Figure 3 for Seeing Around Street Corners: Non-Line-of-Sight Detection and Tracking In-the-Wild Using Doppler Radar
Figure 4 for Seeing Around Street Corners: Non-Line-of-Sight Detection and Tracking In-the-Wild Using Doppler Radar
Viaarxiv icon

A Multi-Stage Clustering Framework for Automotive Radar Data

Add code
Bookmark button
Alert button
Jul 08, 2019
Nicolas Scheiner, Nils Appenrodt, Jürgen Dickmann, Bernhard Sick

Figure 1 for A Multi-Stage Clustering Framework for Automotive Radar Data
Figure 2 for A Multi-Stage Clustering Framework for Automotive Radar Data
Figure 3 for A Multi-Stage Clustering Framework for Automotive Radar Data
Figure 4 for A Multi-Stage Clustering Framework for Automotive Radar Data
Viaarxiv icon

Automated Ground Truth Estimation For Automotive Radar Tracking Applications With Portable GNSS And IMU Devices

Add code
Bookmark button
Alert button
Jun 03, 2019
Nicolas Scheiner, Stefan Haag, Nils Appenrodt, Bharanidhar Duraisamy, Jürgen Dickmann, Martin Fritzsche, Bernhard Sick

Figure 1 for Automated Ground Truth Estimation For Automotive Radar Tracking Applications With Portable GNSS And IMU Devices
Figure 2 for Automated Ground Truth Estimation For Automotive Radar Tracking Applications With Portable GNSS And IMU Devices
Figure 3 for Automated Ground Truth Estimation For Automotive Radar Tracking Applications With Portable GNSS And IMU Devices
Figure 4 for Automated Ground Truth Estimation For Automotive Radar Tracking Applications With Portable GNSS And IMU Devices
Viaarxiv icon

Radar-based Road User Classification and Novelty Detection with Recurrent Neural Network Ensembles

Add code
Bookmark button
Alert button
May 28, 2019
Nicolas Scheiner, Nils Appenrodt, Jürgen Dickmann, Bernhard Sick

Figure 1 for Radar-based Road User Classification and Novelty Detection with Recurrent Neural Network Ensembles
Figure 2 for Radar-based Road User Classification and Novelty Detection with Recurrent Neural Network Ensembles
Figure 3 for Radar-based Road User Classification and Novelty Detection with Recurrent Neural Network Ensembles
Figure 4 for Radar-based Road User Classification and Novelty Detection with Recurrent Neural Network Ensembles
Viaarxiv icon

Radar-based Feature Design and Multiclass Classification for Road User Recognition

Add code
Bookmark button
Alert button
May 27, 2019
Nicolas Scheiner, Nils Appenrodt, Jürgen Dickmann, Bernhard Sick

Figure 1 for Radar-based Feature Design and Multiclass Classification for Road User Recognition
Figure 2 for Radar-based Feature Design and Multiclass Classification for Road User Recognition
Figure 3 for Radar-based Feature Design and Multiclass Classification for Road User Recognition
Figure 4 for Radar-based Feature Design and Multiclass Classification for Road User Recognition
Viaarxiv icon

Automated Ground Truth Estimation of Vulnerable Road Users in Automotive Radar Data Using GNSS

Add code
Bookmark button
Alert button
May 27, 2019
Nicolas Scheiner, Nils Appenrodt, Jürgen Dickmann, Bernhard Sick

Figure 1 for Automated Ground Truth Estimation of Vulnerable Road Users in Automotive Radar Data Using GNSS
Figure 2 for Automated Ground Truth Estimation of Vulnerable Road Users in Automotive Radar Data Using GNSS
Figure 3 for Automated Ground Truth Estimation of Vulnerable Road Users in Automotive Radar Data Using GNSS
Figure 4 for Automated Ground Truth Estimation of Vulnerable Road Users in Automotive Radar Data Using GNSS
Viaarxiv icon