Thom Scheeve
PhD Candidate
SPIE Involvement:
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Profile Summary

Thom Scheeve was born in Zaandam, The Netherlands. He received his BSc degree in Medical Information Science from University of Amsterdam, Amsterdam, The Netherlands and his MSc degree in Electrical Engineering from Eindhoven University of Technology, Eindhoven, The Netherlands. Since April 2018, he is working as a PhD candidate in the Signal Processing Systems, Video Coding and Architectures group at Eindhoven University of Technology. His project primarily focuses on cancer detection and diagnosis in the gastrointestinal tract (volumetric laser endomicroscopy for early Barret's cancer and novel imaging techniques for colorectal polyps) using more clinically driven/motivated approaches instead of black-box tweaking.
Publications (5)

Proceedings Article | 7 April 2023 Presentation + Paper
Proceedings Volume 12465, 124650S (2023) https://doi.org/10.1117/12.2654167
KEYWORDS: Image quality, Endoscopy, Polyps, Cancer, Colorectal cancer, Clinical practice, Deep learning, Distortion

Proceedings Article | 7 April 2023 Presentation + Paper
Proceedings Volume 12465, 124651G (2023) https://doi.org/10.1117/12.2653848
KEYWORDS: Calibration, Polyps, Performance modeling, Computer aided detection, Reliability, Medical imaging, Endoscopy, Network architectures, Image classification

Proceedings Article | 4 April 2022 Poster + Paper
Proceedings Volume 12033, 120331P (2022) https://doi.org/10.1117/12.2606801
KEYWORDS: Calibration, Reliability, Error control coding, Computer aided diagnosis and therapy, Convolutional neural networks, Systems modeling, Electrochemical etching, In vivo imaging, Endoscopy, Cancer

Proceedings Article | 13 March 2019 Paper
Proceedings Volume 10950, 109501Y (2019) https://doi.org/10.1117/12.2508244
KEYWORDS: Image segmentation, Tissues, Image analysis, In vivo imaging, Endomicroscopy, Esophagus, Endoscopy, Machine learning

Proceedings Article | 13 March 2019 Paper
Proceedings Volume 10950, 1095012 (2019) https://doi.org/10.1117/12.2508223
KEYWORDS: Colorectal cancer, Endoscopy, Imaging systems, Diagnostics, Computer aided diagnosis and therapy, Image classification, Machine learning

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