Modeling for active needle steering in Percutaneous surgery

Precise needle insertion is very important for a number of percutaneous interventions. Yet it is very difficult to achieve in practice. Errors caused by the target movement and needle deflection have been observed for a long time. Yet to date, there are few effective physical-based needle steering...

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Main Author: Yan, KaiGuo
Other Authors: Ng Wan Sing
Format: Theses and Dissertations
Published: 2008
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Online Access:https://hdl.handle.net/10356/5453
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Institution: Nanyang Technological University
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spelling sg-ntu-dr.10356-54532023-03-11T17:49:02Z Modeling for active needle steering in Percutaneous surgery Yan, KaiGuo Ng Wan Sing School of Mechanical and Aerospace Engineering DRNTU::Engineering::Mechanical engineering::Surgical assistive technology Precise needle insertion is very important for a number of percutaneous interventions. Yet it is very difficult to achieve in practice. Errors caused by the target movement and needle deflection have been observed for a long time. Yet to date, there are few effective physical-based needle steering systems existing for correcting the needle deflection when it occurs. In addition, many procedures are currently not amenable to needles because of obstacles, such as bone or sensitive tissues, which lie between feasible entry points and potential targets. Thus, there is a clear motivation for needle steering in order to provide accurate and dexterous targeting. This work aims to build a needle-tissue interaction model that can be used for designing a needle steering system. A spring-beam-damper model is adopted in this work, which takes into consideration both the elastic, viscoelastic tissue reactions and the needle flexibility, as well as their interaction effects. Unconstrained modal analysis method, which is computationally efficient, is adopted to analyze the system dynamics. Considering the tissue inhomogeneity and computational efficiency, depth-varying mean parameters are proposed in this thesis to calculate the spring and damper effects. Local polynomial approximations in finite depth segments are used to approximate the unknown depth-varying mean parameters. Based on these approaches, an online parameter estimator has been designed using modified least square method with forgetting factor. Extensive experiments have been carried out in various types of phantoms to validate the needle steering model with the online parameter estimator. Results have shown that the model can track the needle tip trajectory with RMSE (Root Mean Square Errors) less than 1mm after convergence even in the presence of large noises, which come from the reduced mode model, poor initial estimation and sensor noises etc. The convergence rate will be greatly improved if the needle gets supported. DOCTOR OF PHILOSOPHY (MAE) 2008-09-17T10:50:58Z 2008-09-17T10:50:58Z 2008 2008 Thesis Yan, K. G. (2008). Modeling for active needle steering in Percutaneous surgery. Doctoral thesis, Nanyang Technological University, Singapore. https://hdl.handle.net/10356/5453 10.32657/10356/5453 Nanyang Technological University application/pdf
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
topic DRNTU::Engineering::Mechanical engineering::Surgical assistive technology
spellingShingle DRNTU::Engineering::Mechanical engineering::Surgical assistive technology
Yan, KaiGuo
Modeling for active needle steering in Percutaneous surgery
description Precise needle insertion is very important for a number of percutaneous interventions. Yet it is very difficult to achieve in practice. Errors caused by the target movement and needle deflection have been observed for a long time. Yet to date, there are few effective physical-based needle steering systems existing for correcting the needle deflection when it occurs. In addition, many procedures are currently not amenable to needles because of obstacles, such as bone or sensitive tissues, which lie between feasible entry points and potential targets. Thus, there is a clear motivation for needle steering in order to provide accurate and dexterous targeting. This work aims to build a needle-tissue interaction model that can be used for designing a needle steering system. A spring-beam-damper model is adopted in this work, which takes into consideration both the elastic, viscoelastic tissue reactions and the needle flexibility, as well as their interaction effects. Unconstrained modal analysis method, which is computationally efficient, is adopted to analyze the system dynamics. Considering the tissue inhomogeneity and computational efficiency, depth-varying mean parameters are proposed in this thesis to calculate the spring and damper effects. Local polynomial approximations in finite depth segments are used to approximate the unknown depth-varying mean parameters. Based on these approaches, an online parameter estimator has been designed using modified least square method with forgetting factor. Extensive experiments have been carried out in various types of phantoms to validate the needle steering model with the online parameter estimator. Results have shown that the model can track the needle tip trajectory with RMSE (Root Mean Square Errors) less than 1mm after convergence even in the presence of large noises, which come from the reduced mode model, poor initial estimation and sensor noises etc. The convergence rate will be greatly improved if the needle gets supported.
author2 Ng Wan Sing
author_facet Ng Wan Sing
Yan, KaiGuo
format Theses and Dissertations
author Yan, KaiGuo
author_sort Yan, KaiGuo
title Modeling for active needle steering in Percutaneous surgery
title_short Modeling for active needle steering in Percutaneous surgery
title_full Modeling for active needle steering in Percutaneous surgery
title_fullStr Modeling for active needle steering in Percutaneous surgery
title_full_unstemmed Modeling for active needle steering in Percutaneous surgery
title_sort modeling for active needle steering in percutaneous surgery
publishDate 2008
url https://hdl.handle.net/10356/5453
_version_ 1761781342958256128