6D Robotic OCT Scanning of Curved Tissue Surfaces

Fuente: arXiv
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Auteurs principaux: Guttikonda, Suresh, Neidhardt, Maximilian, Raudonis, Vidas, Schlaefer, Alexander
Format: Preprint
Publié: 2026
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author Guttikonda, Suresh
Neidhardt, Maximilian
Raudonis, Vidas
Schlaefer, Alexander
author_facet Guttikonda, Suresh
Neidhardt, Maximilian
Raudonis, Vidas
Schlaefer, Alexander
contents Optical coherence tomography (OCT) is a non-invasive volumetric imaging modality with high spatial and temporal resolution. For imaging larger tissue structures, OCT probes need to be moved to scan the respective area. For handheld scanning, stitching of the acquired OCT volumes requires overlap to register the images. For robotic scanning and stitching, a typical approach is to restrict the motion to translations, as this avoids a full hand-eye calibration, which is complicated by the small field of view of most OCT probes. However, stitching by registration or by translational scanning are limited when curved tissue surfaces need to be scanned. We propose a marker for full six-dimensional hand-eye calibration of a robot mounted OCT probe. We show that the calibration results in highly repeatable estimates of the transformation. Moreover, we evaluate robotic scanning of two phantom surfaces to demonstrate that the proposed calibration allows for consistent scanning of large, curved tissue surfaces. As the proposed approach is not relying on image registration, it does not suffer from a potential accumulation of errors along a scan path. We also illustrate the improvement compared to conventional 3D-translational robotic scanning.
format Preprint
id arxiv_https___arxiv_org_abs_2603_22012
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle 6D Robotic OCT Scanning of Curved Tissue Surfaces
Guttikonda, Suresh
Neidhardt, Maximilian
Raudonis, Vidas
Schlaefer, Alexander
Computer Vision and Pattern Recognition
Robotics
Optical coherence tomography (OCT) is a non-invasive volumetric imaging modality with high spatial and temporal resolution. For imaging larger tissue structures, OCT probes need to be moved to scan the respective area. For handheld scanning, stitching of the acquired OCT volumes requires overlap to register the images. For robotic scanning and stitching, a typical approach is to restrict the motion to translations, as this avoids a full hand-eye calibration, which is complicated by the small field of view of most OCT probes. However, stitching by registration or by translational scanning are limited when curved tissue surfaces need to be scanned. We propose a marker for full six-dimensional hand-eye calibration of a robot mounted OCT probe. We show that the calibration results in highly repeatable estimates of the transformation. Moreover, we evaluate robotic scanning of two phantom surfaces to demonstrate that the proposed calibration allows for consistent scanning of large, curved tissue surfaces. As the proposed approach is not relying on image registration, it does not suffer from a potential accumulation of errors along a scan path. We also illustrate the improvement compared to conventional 3D-translational robotic scanning.
title 6D Robotic OCT Scanning of Curved Tissue Surfaces
topic Computer Vision and Pattern Recognition
Robotics
url https://arxiv.org/abs/2603.22012