Regularized nonlinear regression for simultaneously selecting and estimating key model parameters: Application to head-neck position tracking
In system identification, estimating parameters of a biomechanical model using limited observations results in poor identifiability. To cope with this issue, we propose a new method to simultaneously select and estimate sensitive parameters as key model parameters while fixing the remaining paramete...
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Published in | Engineering applications of artificial intelligence Vol. 113; p. 104974 |
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Main Authors | , , , , , , , , , , |
Format | Journal Article |
Language | English |
Published |
Elsevier Ltd
01.08.2022
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Subjects | |
Online Access | Get full text |
ISSN | 0952-1976 1873-6769 |
DOI | 10.1016/j.engappai.2022.104974 |
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Abstract | In system identification, estimating parameters of a biomechanical model using limited observations results in poor identifiability. To cope with this issue, we propose a new method to simultaneously select and estimate sensitive parameters as key model parameters while fixing the remaining parameters to a set of typical values. The problem is formulated as a nonlinear least-squares estimator with L1-regularization on the deviation of parameters from a set of typical values. In addition, a modified optimization approach is introduced to find the solution to the formulated problem. As a result, we provided consistency and oracle properties of the proposed estimator as a theoretical foundation. To show the effectiveness of the proposed method, we conducted simulation and experimental studies. In the simulation study, the proposed Lasso performed significantly better than the ordinary L1-regularization methods in terms of the bias and variance of the parameter estimates. The experimental study presented an application identifying a biomechanical parametric model of a head position tracking task for ten human subjects from limited data. Compared with the variance of the parameter estimates from nonlinear ordinary least-squares regression, that of parameter estimates from the proposed Lasso decreased by 96% using the simulated data. Using the real-world data, the variance of estimated parameters decreased by 71%. In addition, the proposed method kept variance accounted for (VAF) at 83% and was 54 times faster than the ordinary Lasso using a standard simplex-based optimization algorithm. |
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AbstractList | In system identification, estimating parameters of a biomechanical model using limited observations results in poor identifiability. To cope with this issue, we propose a new method to simultaneously select and estimate sensitive parameters as key model parameters while fixing the remaining parameters to a set of typical values. The problem is formulated as a nonlinear least-squares estimator with L1-regularization on the deviation of parameters from a set of typical values. In addition, a modified optimization approach is introduced to find the solution to the formulated problem. As a result, we provided consistency and oracle properties of the proposed estimator as a theoretical foundation. To show the effectiveness of the proposed method, we conducted simulation and experimental studies. In the simulation study, the proposed Lasso performed significantly better than the ordinary L1-regularization methods in terms of the bias and variance of the parameter estimates. The experimental study presented an application identifying a biomechanical parametric model of a head position tracking task for ten human subjects from limited data. Compared with the variance of the parameter estimates from nonlinear ordinary least-squares regression, that of parameter estimates from the proposed Lasso decreased by 96% using the simulated data. Using the real-world data, the variance of estimated parameters decreased by 71%. In addition, the proposed method kept variance accounted for (VAF) at 83% and was 54 times faster than the ordinary Lasso using a standard simplex-based optimization algorithm. |
ArticleNumber | 104974 |
Author | Choi, Jongeun Boss, Connor Yoon, Kyubaek Wu, Wei-Ying Lim, Chae Young Radcliffe, Clark J. Reeves, N. Peter Cholewicki, Jacek You, Hojun Popovich, John M. Ramadan, Ahmed |
Author_xml | – sequence: 1 givenname: Kyubaek surname: Yoon fullname: Yoon, Kyubaek organization: School of Mechanical Engineering, Yonsei University, 50 Yonsei Ro, Seodaemun Gu, Seoul 03722, Republic of Korea – sequence: 2 givenname: Hojun orcidid: 0000-0001-9404-1935 surname: You fullname: You, Hojun organization: Department of Statistics, Seoul National University, Seoul 08826, Republic of Korea – sequence: 3 givenname: Wei-Ying orcidid: 0000-0003-1538-728X surname: Wu fullname: Wu, Wei-Ying organization: Department of Applied Mathematics, National Dong Hwa University, Hualien 97401, Taiwan – sequence: 4 givenname: Chae Young surname: Lim fullname: Lim, Chae Young organization: Department of Statistics, Seoul National University, Seoul 08826, Republic of Korea – sequence: 5 givenname: Jongeun orcidid: 0000-0002-7532-5315 surname: Choi fullname: Choi, Jongeun email: jongeunchoi@yonsei.ac.kr organization: School of Mechanical Engineering, Yonsei University, 50 Yonsei Ro, Seodaemun Gu, Seoul 03722, Republic of Korea – sequence: 6 givenname: Connor surname: Boss fullname: Boss, Connor organization: Department of Electrical Engineering, Michigan State University, East Lansing, MI 48824, USA – sequence: 7 givenname: Ahmed orcidid: 0000-0001-5759-0484 surname: Ramadan fullname: Ramadan, Ahmed organization: Department of Biomedical Engineering, University of Minnesota, Minneapolis, MN, USA – sequence: 8 givenname: John M. surname: Popovich fullname: Popovich, John M. organization: Department of Osteopathic Manipulative Medicine, College of Osteopathic Medicine, Michigan State University, East Lansing, MI 48824, USA – sequence: 9 givenname: Jacek orcidid: 0000-0003-3682-6448 surname: Cholewicki fullname: Cholewicki, Jacek organization: Department of Osteopathic Manipulative Medicine, College of Osteopathic Medicine, Michigan State University, East Lansing, MI 48824, USA – sequence: 10 givenname: N. Peter surname: Reeves fullname: Reeves, N. Peter organization: Sumaq Life LLC, East Lansing, MI 48823, USA – sequence: 11 givenname: Clark J. orcidid: 0000-0001-7693-1571 surname: Radcliffe fullname: Radcliffe, Clark J. organization: Department of Mechanical Engineering, Michigan State University, East Lansing, MI 48824, USA |
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Keywords | Identifiability L1-regularization System identification Nonlinear regression Head-neck model |
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Title | Regularized nonlinear regression for simultaneously selecting and estimating key model parameters: Application to head-neck position tracking |
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