Vision-based deformation recovery for intraoperative force estimation of tool–tissue interaction for neurosurgery
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Published version
Author(s)
Type
Journal Article
Abstract
Purpose: In microsurgery, accurate recovery of the deformation of the surgical environment is important for mitigating the risk of inadvertent tissue damage and avoiding instrument maneuvers that may cause injury. The analysis of intraoperative microscopic data can allow the estimation of tissue deformation and provide to the surgeon useful feedback on the instrument forces exerted on the tissue. In practice, vision-based recovery of tissue deformation during tool–tissue interaction can be challenging due to tissue elasticity and unpredictable motion.
Methods: The aim of this work is to propose an approach for deformation recovery based on quasi-dense 3D stereo reconstruction. The proposed framework incorporates a new stereo correspondence method for estimating the underlying 3D structure. Probabilistic tracking and surface mapping are used to estimate 3D point correspondences across time and recover localized tissue deformations in the surgical site.
Results: We demonstrate the application of this method to estimating forces exerted on tissue surfaces. A clinically relevant experimental setup was used to validate the proposed framework on phantom data. The quantitative and qualitative performance evaluation results show that the proposed 3D stereo reconstruction and deformation recovery methods achieve submillimeter accuracy. The force–displacement model also provides accurate estimates of the exerted forces.
Conclusions: A novel approach for tissue deformation recovery has been proposed based on reliable quasi-dense stereo correspondences. The proposed framework does not rely on additional equipment, allowing seamless integration with the existing surgical workflow. The performance evaluation analysis shows the potential clinical value of the technique.
Methods: The aim of this work is to propose an approach for deformation recovery based on quasi-dense 3D stereo reconstruction. The proposed framework incorporates a new stereo correspondence method for estimating the underlying 3D structure. Probabilistic tracking and surface mapping are used to estimate 3D point correspondences across time and recover localized tissue deformations in the surgical site.
Results: We demonstrate the application of this method to estimating forces exerted on tissue surfaces. A clinically relevant experimental setup was used to validate the proposed framework on phantom data. The quantitative and qualitative performance evaluation results show that the proposed 3D stereo reconstruction and deformation recovery methods achieve submillimeter accuracy. The force–displacement model also provides accurate estimates of the exerted forces.
Conclusions: A novel approach for tissue deformation recovery has been proposed based on reliable quasi-dense stereo correspondences. The proposed framework does not rely on additional equipment, allowing seamless integration with the existing surgical workflow. The performance evaluation analysis shows the potential clinical value of the technique.
Date Issued
2016-06-01
Date Acceptance
2016-02-23
Citation
International Journal of Computer Assisted Radiology and Surgery, 2016, 11 (6), pp.929-936
ISSN
1861-6410
Publisher
Springer Verlag
Start Page
929
End Page
936
Journal / Book Title
International Journal of Computer Assisted Radiology and Surgery
Volume
11
Issue
6
Copyright Statement
© The Author(s) 2016. This article is published with open access at Springerlink.com
License URL
Sponsor
The Royal Society
Identifier
https://link.springer.com/article/10.1007/s11548-016-1361-z
Grant Number
UF140290
Subjects
Science & Technology
Technology
Life Sciences & Biomedicine
Engineering, Biomedical
Radiology, Nuclear Medicine & Medical Imaging
Surgery
Engineering
3D stereo reconstruction
Soft tissue tracking
Deformation recovery
Force estimation
TRACKING
SHAPE
3D stereo reconstruction
Deformation recovery
Force estimation
Soft tissue tracking
Humans
Imaging, Three-Dimensional
Microsurgery
Models, Theoretical
Neurosurgical Procedures
Phantoms, Imaging
Surgery, Computer-Assisted
Humans
Imaging, Three-Dimensional
Surgery, Computer-Assisted
Microsurgery
Neurosurgical Procedures
Phantoms, Imaging
Models, Theoretical
1103 Clinical Sciences
Nuclear Medicine & Medical Imaging
Publication Status
Published
Date Publish Online
2016-03-23