A 3D Human-Machine Integrated Design and Analysis Framework for Squat Exercises with a Smith Machine
In this paper, we propose a three-dimensional design and evaluation framework and process based on a probabilistic-based motion synthesis algorithm and biomechanical analysis system for the design of the Smith machine and squat training programs. Moreover, we implemented a prototype system to valida...
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doaj-c095b1e8b82c451aa3f6eefc32fda4432020-11-24T21:59:10ZengMDPI AGSensors1424-82202017-02-0117229910.3390/s17020299s17020299A 3D Human-Machine Integrated Design and Analysis Framework for Squat Exercises with a Smith MachineHaerin Lee0Moonki Jung1Ki-Kwang Lee2Sang Hun Lee3Intelligence and Interaction Lab., Graduate School of Automotive Engineering, Kookmin University, 77 Jeongneung-ro, Seongbuk-gu, Seoul 02707, KoreaAnyBody Technology A/S, Niels Jernes Vej 10, Aalborg East 9220, DenmarkBiomechanics Lab, Department of Sports Science, Kookmin University, 77 Jeongneung-ro, Seongbuk-gu, Seoul 02707, KoreaIntelligence and Interaction Lab., Graduate School of Automotive Engineering, Kookmin University, 77 Jeongneung-ro, Seongbuk-gu, Seoul 02707, KoreaIn this paper, we propose a three-dimensional design and evaluation framework and process based on a probabilistic-based motion synthesis algorithm and biomechanical analysis system for the design of the Smith machine and squat training programs. Moreover, we implemented a prototype system to validate the proposed framework. The framework consists of an integrated human–machine–environment model as well as a squat motion synthesis system and biomechanical analysis system. In the design and evaluation process, we created an integrated model in which interactions between a human body and machine or the ground are modeled as joints with constraints at contact points. Next, we generated Smith squat motion using the motion synthesis program based on a Gaussian process regression algorithm with a set of given values for independent variables. Then, using the biomechanical analysis system, we simulated joint moments and muscle activities from the input of the integrated model and squat motion. We validated the model and algorithm through physical experiments measuring the electromyography (EMG) signals, ground forces, and squat motions as well as through a biomechanical simulation of muscle forces. The proposed approach enables the incorporation of biomechanics in the design process and reduces the need for physical experiments and prototypes in the development of training programs and new Smith machines.http://www.mdpi.com/1424-8220/17/2/299squatbiomechanical analysismusculoskeletal modelGaussian process regressionmotion generationdigital human modeling |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Haerin Lee Moonki Jung Ki-Kwang Lee Sang Hun Lee |
spellingShingle |
Haerin Lee Moonki Jung Ki-Kwang Lee Sang Hun Lee A 3D Human-Machine Integrated Design and Analysis Framework for Squat Exercises with a Smith Machine Sensors squat biomechanical analysis musculoskeletal model Gaussian process regression motion generation digital human modeling |
author_facet |
Haerin Lee Moonki Jung Ki-Kwang Lee Sang Hun Lee |
author_sort |
Haerin Lee |
title |
A 3D Human-Machine Integrated Design and Analysis Framework for Squat Exercises with a Smith Machine |
title_short |
A 3D Human-Machine Integrated Design and Analysis Framework for Squat Exercises with a Smith Machine |
title_full |
A 3D Human-Machine Integrated Design and Analysis Framework for Squat Exercises with a Smith Machine |
title_fullStr |
A 3D Human-Machine Integrated Design and Analysis Framework for Squat Exercises with a Smith Machine |
title_full_unstemmed |
A 3D Human-Machine Integrated Design and Analysis Framework for Squat Exercises with a Smith Machine |
title_sort |
3d human-machine integrated design and analysis framework for squat exercises with a smith machine |
publisher |
MDPI AG |
series |
Sensors |
issn |
1424-8220 |
publishDate |
2017-02-01 |
description |
In this paper, we propose a three-dimensional design and evaluation framework and process based on a probabilistic-based motion synthesis algorithm and biomechanical analysis system for the design of the Smith machine and squat training programs. Moreover, we implemented a prototype system to validate the proposed framework. The framework consists of an integrated human–machine–environment model as well as a squat motion synthesis system and biomechanical analysis system. In the design and evaluation process, we created an integrated model in which interactions between a human body and machine or the ground are modeled as joints with constraints at contact points. Next, we generated Smith squat motion using the motion synthesis program based on a Gaussian process regression algorithm with a set of given values for independent variables. Then, using the biomechanical analysis system, we simulated joint moments and muscle activities from the input of the integrated model and squat motion. We validated the model and algorithm through physical experiments measuring the electromyography (EMG) signals, ground forces, and squat motions as well as through a biomechanical simulation of muscle forces. The proposed approach enables the incorporation of biomechanics in the design process and reduces the need for physical experiments and prototypes in the development of training programs and new Smith machines. |
topic |
squat biomechanical analysis musculoskeletal model Gaussian process regression motion generation digital human modeling |
url |
http://www.mdpi.com/1424-8220/17/2/299 |
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