Alert button
Picture for Markus Kowarschik

Markus Kowarschik

Alert button

Siemens Healthcare GmbH, Forchheim, Germany

Physics-Informed Learning for Time-Resolved Angiographic Contrast Agent Concentration Reconstruction

Add code
Bookmark button
Alert button
Mar 04, 2024
Noah Maul, Annette Birkhold, Fabian Wagner, Mareike Thies, Maximilian Rohleder, Philipp Berg, Markus Kowarschik, Andreas Maier

Figure 1 for Physics-Informed Learning for Time-Resolved Angiographic Contrast Agent Concentration Reconstruction
Figure 2 for Physics-Informed Learning for Time-Resolved Angiographic Contrast Agent Concentration Reconstruction
Figure 3 for Physics-Informed Learning for Time-Resolved Angiographic Contrast Agent Concentration Reconstruction
Figure 4 for Physics-Informed Learning for Time-Resolved Angiographic Contrast Agent Concentration Reconstruction
Viaarxiv icon

BOSS: Bones, Organs and Skin Shape Model

Add code
Bookmark button
Alert button
Mar 08, 2023
Karthik Shetty, Annette Birkhold, Srikrishna Jaganathan, Norbert Strobel, Bernhard Egger, Markus Kowarschik, Andreas Maier

Figure 1 for BOSS: Bones, Organs and Skin Shape Model
Figure 2 for BOSS: Bones, Organs and Skin Shape Model
Figure 3 for BOSS: Bones, Organs and Skin Shape Model
Figure 4 for BOSS: Bones, Organs and Skin Shape Model
Viaarxiv icon

Transient Hemodynamics Prediction Using an Efficient Octree-Based Deep Learning Model

Add code
Bookmark button
Alert button
Feb 13, 2023
Noah Maul, Katharina Zinn, Fabian Wagner, Mareike Thies, Maximilian Rohleder, Laura Pfaff, Markus Kowarschik, Annette Birkhold, Andreas Maier

Figure 1 for Transient Hemodynamics Prediction Using an Efficient Octree-Based Deep Learning Model
Figure 2 for Transient Hemodynamics Prediction Using an Efficient Octree-Based Deep Learning Model
Figure 3 for Transient Hemodynamics Prediction Using an Efficient Octree-Based Deep Learning Model
Figure 4 for Transient Hemodynamics Prediction Using an Efficient Octree-Based Deep Learning Model
Viaarxiv icon

PLIKS: A Pseudo-Linear Inverse Kinematic Solver for 3D Human Body Estimation

Add code
Bookmark button
Alert button
Nov 21, 2022
Karthik Shetty, Annette Birkhold, Srikrishna Jaganathan, Norbert Strobel, Markus Kowarschik, Andreas Maier, Bernhard Egger

Figure 1 for PLIKS: A Pseudo-Linear Inverse Kinematic Solver for 3D Human Body Estimation
Figure 2 for PLIKS: A Pseudo-Linear Inverse Kinematic Solver for 3D Human Body Estimation
Figure 3 for PLIKS: A Pseudo-Linear Inverse Kinematic Solver for 3D Human Body Estimation
Figure 4 for PLIKS: A Pseudo-Linear Inverse Kinematic Solver for 3D Human Body Estimation
Viaarxiv icon

Deep Learning compatible Differentiable X-ray Projections for Inverse Rendering

Add code
Bookmark button
Alert button
Feb 04, 2021
Karthik Shetty, Annette Birkhold, Norbert Strobel, Bernhard Egger, Srikrishna Jaganathan, Markus Kowarschik, Andreas Maier

Figure 1 for Deep Learning compatible Differentiable X-ray Projections for Inverse Rendering
Figure 2 for Deep Learning compatible Differentiable X-ray Projections for Inverse Rendering
Figure 3 for Deep Learning compatible Differentiable X-ray Projections for Inverse Rendering
Viaarxiv icon

Simultaneous Estimation of X-ray Back-Scatter and Forward-Scatter using Multi-Task Learning

Add code
Bookmark button
Alert button
Jul 08, 2020
Philipp Roser, Xia Zhong, Annette Birkhold, Alexander Preuhs, Christopher Syben, Elisabeth Hoppe, Norbert Strobel, Markus Kowarschik, Rebecca Fahrig, Andreas Maier

Figure 1 for Simultaneous Estimation of X-ray Back-Scatter and Forward-Scatter using Multi-Task Learning
Figure 2 for Simultaneous Estimation of X-ray Back-Scatter and Forward-Scatter using Multi-Task Learning
Figure 3 for Simultaneous Estimation of X-ray Back-Scatter and Forward-Scatter using Multi-Task Learning
Figure 4 for Simultaneous Estimation of X-ray Back-Scatter and Forward-Scatter using Multi-Task Learning
Viaarxiv icon

Appearance Learning for Image-based Motion Estimation in Tomography

Add code
Bookmark button
Alert button
Jun 18, 2020
Alexander Preuhs, Michael Manhart, Philipp Roser, Elisabeth Hoppe, Yixing Huang, Marios Psychogios, Markus Kowarschik, Andreas Maier

Figure 1 for Appearance Learning for Image-based Motion Estimation in Tomography
Figure 2 for Appearance Learning for Image-based Motion Estimation in Tomography
Figure 3 for Appearance Learning for Image-based Motion Estimation in Tomography
Figure 4 for Appearance Learning for Image-based Motion Estimation in Tomography
Viaarxiv icon

Deep autofocus with cone-beam CT consistency constraint

Add code
Bookmark button
Alert button
Dec 04, 2019
Alexander Preuhs, Michael Manhart, Philipp Roser, Bernhard Stimpel, Christopher Syben, Marios Psychogios, Markus Kowarschik, Andreas Maier

Figure 1 for Deep autofocus with cone-beam CT consistency constraint
Figure 2 for Deep autofocus with cone-beam CT consistency constraint
Figure 3 for Deep autofocus with cone-beam CT consistency constraint
Figure 4 for Deep autofocus with cone-beam CT consistency constraint
Viaarxiv icon

Image Quality Assessment for Rigid Motion Compensation

Add code
Bookmark button
Alert button
Oct 09, 2019
Alexander Preuhs, Michael Manhart, Philipp Roser, Bernhard Stimpel, Christopher Syben, Marios Psychogios, Markus Kowarschik, Andreas Maier

Figure 1 for Image Quality Assessment for Rigid Motion Compensation
Figure 2 for Image Quality Assessment for Rigid Motion Compensation
Figure 3 for Image Quality Assessment for Rigid Motion Compensation
Viaarxiv icon