Title :
Unconstrained ℓ1 — regularized minimization with interpolated transformations for heart motion compensation
Author :
Aviles, Angelica I. ; Sobrevilla, Pilar ; Casals, Alicia
Author_Institution :
Intell. Robot. & Syst. Group, Univ. Politec. de Cataluya, Barcelona, Spain
Abstract :
Motion compensation constitutes a challenging issue in minimally invasive beating heart surgery. Since the zone to be repaired has a dynamic behaviour, precision and surgeon´s dexterity decrease. In order to solve this problem, various proposals have been presented using ℓ2-norm. However, as they present some limitations in terms of robustness and efficiency, motion compensation is still considered an open problem. In this work, a solution based on the class of ℓ1 Regularized Optimization is proposed. It has been selected due to its mathematical properties and practical benefits. In particular, deformation is characterized by cubic B-splines since they offer an excellent balance between computational cost and accuracy. Moreover, due to the non-differentiability of the functional, the logarithmic barrier function is used for generating a standard optimization problem. Results have provided a very good tradeoff between accuracy and efficiency, indicating the potential of the proposed approach and proving its stability even under complex deformations.
Keywords :
biomechanics; cardiology; deformation; minimisation; motion compensation; surgery; complex deformations; cubic B-splines; dexterity; dynamic behaviour; heart motion compensation; interpolated transformations; l1-regularized optimization; logarithmic barrier function; mathematical properties; minimally invasive beating heart surgery; standard optimization problem; unconstrained l1-regularized minimization; Heart; Motion compensation; Optimization; Robots; Robustness; Splines (mathematics); Surgery;
Conference_Titel :
Engineering in Medicine and Biology Society (EMBC), 2014 36th Annual International Conference of the IEEE
Conference_Location :
Chicago, IL
DOI :
10.1109/EMBC.2014.6944774