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Author

  • Ebigbo, Alanna (8)
  • Messmann, Helmut (8)
  • Palm, Christoph (8)
  • Rauber, David (8)
  • Mendel, Robert (7)
  • Probst, Andreas (7)
  • Römmele, Christoph (6)
  • Meinikheim, Michael (4)
  • Muzalyova, Anna (4)
  • Nagl, Sandra (4)
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Year of publication

  • 2025 (2)
  • 2024 (2)
  • 2023 (1)
  • 2022 (2)
  • 2021 (1)

Document Type

  • Article (8)

Language

  • English (8)

Keywords

  • Gastroenterology (3)
  • Radiology, Nuclear Medicine and imaging (1)

Institute

  • Lehrstuhl für Innere Medizin mit Schwerpunkt Gastroenterologie (8)
  • Medizinische Fakultät (8)
  • Universitätsklinikum (8)
  • Lehrstuhl für Allgemeine und Spezielle Pathologie (2)

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Endoscopic prediction of submucosal invasion in Barrett's cancer with the use of artificial intelligence: a pilot study (2021)
Ebigbo, Alanna ; Mendel, Robert ; Rückert, Tobias ; Schuster, Laurin ; Probst, Andreas ; Manzeneder, Johannes ; Prinz, Friederike ; Mende, Matthias ; Steinbrück, Ingo ; Faiss, Siegbert ; Rauber, David ; de Souza jr, Luis A. ; Papa, João P. ; Deprez, Pierre H. ; Oyama, Tsuneo ; Takahashi, Akiko ; Seewald, Stefan ; Sharma, Prateek ; Byrne, Michael F. ; Palm, Christoph ; Messmann, Helmut
Vessel and tissue recognition during third-space endoscopy using a deep learning algorithm (2022)
Ebigbo, Alanna ; Mendel, Robert ; Scheppach, Markus W ; Probst, Andreas ; Shahidi, Neal ; Prinz, Friederike ; Fleischmann, Carola ; Römmele, Christoph ; Goelder, Stefan Karl ; Braun, Georg ; Rauber, David ; Rueckert, Tobias ; de Souza, Luis A ; Papa, Joao ; Byrne, Michael ; Palm, Christoph ; Messmann, Helmut
An artificial intelligence algorithm is highly accurate for detecting endoscopic features of eosinophilic esophagitis (2022)
Römmele, Christoph ; Mendel, Robert ; Barrett, Caroline ; Kiesl, Hans ; Rauber, David ; Rückert, Tobias ; Kraus, Lisa ; Heinkele, Jakob ; Dhillon, Christine ; Grosser, Bianca ; Prinz, Friederike ; Wanzl, Julia ; Fleischmann, Carola ; Nagl, Sandra ; Schnoy, Elisabeth ; Schlottmann, Jakob ; Dellon, Evan S. ; Messmann, Helmut ; Palm, Christoph ; Ebigbo, Alanna
Influence of artificial intelligence on the diagnostic performance of endoscopists in the assessment of Barrett’s esophagus: a tandem randomized and video trial (2024)
Meinikheim, Michael ; Mendel, Robert ; Palm, Christoph ; Probst, Andreas ; Muzalyova, Anna ; Scheppach, Markus W. ; Nagl, Sandra ; Schnoy, Elisabeth ; Römmele, Christoph ; Schulz, Dominik A. H. ; Schlottmann, Jakob ; Prinz, Friederike ; Rauber, David ; Rückert, Tobias ; Matsumura, Tomoaki ; Fernández-Esparrach, Glòria ; Parsa, Nasim ; Byrne, Michael F. ; Messmann, Helmut ; Ebigbo, Alanna
Detection of duodenal villous atrophy on endoscopic images using a deep learning algorithm (2023)
Scheppach, Markus W. ; Rauber, David ; Stallhofer, Johannes ; Muzalyova, Anna ; Otten, Vera ; Manzeneder, Carolin ; Schwamberger, Tanja ; Wanzl, Julia ; Schlottmann, Jakob ; Tadic, Vidan ; Probst, Andreas ; Schnoy, Elisabeth ; Römmele, Christoph ; Fleischmann, Carola ; Meinikheim, Michael ; Miller, Silvia ; Märkl, Bruno ; Stallmach, Andreas ; Palm, Christoph ; Messmann, Helmut ; Ebigbo, Alanna
Background and aims Celiac disease with its endoscopic manifestation of villous atrophy is underdiagnosed worldwide. The application of artificial intelligence (AI) for the macroscopic detection of villous atrophy at routine esophagogastroduodenoscopy may improve diagnostic performance. Methods A dataset of 858 endoscopic images of 182 patients with villous atrophy and 846 images from 323 patients with normal duodenal mucosa was collected and used to train a ResNet 18 deep learning model to detect villous atrophy. An external data set was used to test the algorithm, in addition to six fellows and four board certified gastroenterologists. Fellows could consult the AI algorithm’s result during the test. From their consultation distribution, a stratification of test images into “easy” and “difficult” was performed and used for classified performance measurement. Results External validation of the AI algorithm yielded values of 90 %, 76 %, and 84 % for sensitivity, specificity, and accuracy, respectively. Fellows scored values of 63 %, 72 % and 67 %, while the corresponding values in experts were 72 %, 69 % and 71 %, respectively. AI consultation significantly improved all trainee performance statistics. While fellows and experts showed significantly lower performance for “difficult” images, the performance of the AI algorithm was stable. Conclusion In this study, an AI algorithm outperformed endoscopy fellows and experts in the detection of villous atrophy on endoscopic still images. AI decision support significantly improved the performance of non-expert endoscopists. The stable performance on “difficult” images suggests a further positive add-on effect in challenging cases.
Layer-selective deep representation to improve esophageal cancer classification (2024)
Souza, Luis A. ; Passos, Leandro A. ; Santana, Marcos Cleison S. ; Mendel, Robert ; Rauber, David ; Ebigbo, Alanna ; Probst, Andreas ; Messmann, Helmut ; Papa, João Paulo ; Palm, Christoph
Artificial intelligence improves submucosal vessel detection during third space endoscopy (2025)
Scheppach, Markus Wolfgang ; Mendel, Robert ; Muzalyova, Anna ; Rauber, David ; Probst, Andreas ; Nagl, Sandra ; Römmele, Christoph ; Yip, Hon Chi ; Lau, Ho Shing Louis ; Gölder, Stefan Karl ; Schmidt, Arthur ; Kouladouros, Konstantinos ; Abdelhafez, Mohamed ; Walter, Benjamin M. ; Meinikheim, Michael ; Chiu, Philip Wai Yan ; Palm, Christoph ; Messmann, Helmut ; Ebigbo, Alanna
Use of artificial intelligence in submucosal vessel detection during third-space endoscopy (2025)
Scheppach, Markus W. ; Mendel, Robert ; Muzalyova, Anna ; Rauber, David ; Probst, Andreas ; Nagl, Sandra ; Römmele, Christoph ; Yip, Hon Chi ; Lau, Louis H. S. ; Gölder, Stefan K. ; Schmidt, Arthur ; Kouladouros, Konstantinos ; Abdelhafez, Mohamed ; Walter, Benjamin M. ; Meinikheim, Michael ; Chiu, Philip W. Y. ; Palm, Christoph ; Messmann, Helmut ; Ebigbo, Alanna
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