Alert button
Picture for Christoph Palm

Christoph Palm

Alert button

Regensburg Medical Image Computing, Regensburg Center of Health Sciences and Technology

Motion-Corrected Moving Average: Including Post-Hoc Temporal Information for Improved Video Segmentation

Add code
Bookmark button
Alert button
Mar 05, 2024
Robert Mendel, Tobias Rueckert, Dirk Wilhelm, Daniel Rueckert, Christoph Palm

Figure 1 for Motion-Corrected Moving Average: Including Post-Hoc Temporal Information for Improved Video Segmentation
Figure 2 for Motion-Corrected Moving Average: Including Post-Hoc Temporal Information for Improved Video Segmentation
Figure 3 for Motion-Corrected Moving Average: Including Post-Hoc Temporal Information for Improved Video Segmentation
Figure 4 for Motion-Corrected Moving Average: Including Post-Hoc Temporal Information for Improved Video Segmentation
Viaarxiv icon

Methods and datasets for segmentation of minimally invasive surgical instruments in endoscopic images and videos: A review of the state of the art

Add code
Bookmark button
Alert button
Apr 25, 2023
Tobias Rueckert, Daniel Rueckert, Christoph Palm

Figure 1 for Methods and datasets for segmentation of minimally invasive surgical instruments in endoscopic images and videos: A review of the state of the art
Figure 2 for Methods and datasets for segmentation of minimally invasive surgical instruments in endoscopic images and videos: A review of the state of the art
Figure 3 for Methods and datasets for segmentation of minimally invasive surgical instruments in endoscopic images and videos: A review of the state of the art
Figure 4 for Methods and datasets for segmentation of minimally invasive surgical instruments in endoscopic images and videos: A review of the state of the art
Viaarxiv icon

Learning the shape of female breasts: an open-access 3D statistical shape model of the female breast built from 110 breast scans

Add code
Bookmark button
Alert button
Jul 28, 2021
Maximilian Weiherer, Andreas Eigenberger, Vanessa Brébant, Lukas Prantl, Christoph Palm

Figure 1 for Learning the shape of female breasts: an open-access 3D statistical shape model of the female breast built from 110 breast scans
Figure 2 for Learning the shape of female breasts: an open-access 3D statistical shape model of the female breast built from 110 breast scans
Figure 3 for Learning the shape of female breasts: an open-access 3D statistical shape model of the female breast built from 110 breast scans
Figure 4 for Learning the shape of female breasts: an open-access 3D statistical shape model of the female breast built from 110 breast scans
Viaarxiv icon

Learning Visual Representations with Optimum-Path Forest and its Applications to Barrett's Esophagus and Adenocarcinoma Diagnosis

Add code
Bookmark button
Alert button
Jan 19, 2021
Luis A. de Souza Jr., Luis C. S. Afonso, Alanna Ebigbo, Andreas Probst, Helmut Messmann, Robert Mendel, Christoph Palm, João P. Papa

Figure 1 for Learning Visual Representations with Optimum-Path Forest and its Applications to Barrett's Esophagus and Adenocarcinoma Diagnosis
Figure 2 for Learning Visual Representations with Optimum-Path Forest and its Applications to Barrett's Esophagus and Adenocarcinoma Diagnosis
Figure 3 for Learning Visual Representations with Optimum-Path Forest and its Applications to Barrett's Esophagus and Adenocarcinoma Diagnosis
Figure 4 for Learning Visual Representations with Optimum-Path Forest and its Applications to Barrett's Esophagus and Adenocarcinoma Diagnosis
Viaarxiv icon

Assisting Barrett's esophagus identification using endoscopic data augmentation based on Generative Adversarial Networks

Add code
Bookmark button
Alert button
Jan 18, 2021
Luis A. de Souza Jr., Leandro A. Passos, Robert Mendel, Alanna Ebigbo, Andreas Probst, Helmut Messmann, Christoph Palm, João P. Papa

Figure 1 for Assisting Barrett's esophagus identification using endoscopic data augmentation based on Generative Adversarial Networks
Figure 2 for Assisting Barrett's esophagus identification using endoscopic data augmentation based on Generative Adversarial Networks
Figure 3 for Assisting Barrett's esophagus identification using endoscopic data augmentation based on Generative Adversarial Networks
Figure 4 for Assisting Barrett's esophagus identification using endoscopic data augmentation based on Generative Adversarial Networks
Viaarxiv icon

2018 Robotic Scene Segmentation Challenge

Add code
Bookmark button
Alert button
Feb 03, 2020
Max Allan, Satoshi Kondo, Sebastian Bodenstedt, Stefan Leger, Rahim Kadkhodamohammadi, Imanol Luengo, Felix Fuentes, Evangello Flouty, Ahmed Mohammed, Marius Pedersen, Avinash Kori, Varghese Alex, Ganapathy Krishnamurthi, David Rauber, Robert Mendel, Christoph Palm, Sophia Bano, Guinther Saibro, Chi-Sheng Shih, Hsun-An Chiang, Juntang Zhuang, Junlin Yang, Vladimir Iglovikov, Anton Dobrenkii, Madhu Reddiboina, Anubhav Reddy, Xingtong Liu, Cong Gao, Mathias Unberath, Myeonghyeon Kim, Chanho Kim, Chaewon Kim, Hyejin Kim, Gyeongmin Lee, Ihsan Ullah, Miguel Luna, Sang Hyun Park, Mahdi Azizian, Danail Stoyanov, Lena Maier-Hein, Stefanie Speidel

Figure 1 for 2018 Robotic Scene Segmentation Challenge
Figure 2 for 2018 Robotic Scene Segmentation Challenge
Figure 3 for 2018 Robotic Scene Segmentation Challenge
Figure 4 for 2018 Robotic Scene Segmentation Challenge
Viaarxiv icon