Multimodal Sensor Motion Intention Recognition Based on Three-Dimensional Convolutional Neural Network Algorithm
With the development of microelectronic technology and computer systems, the research of motion intention recognition based on multimodal sensors has attracted the attention of the academic community. Deep learning and other nonlinear neural network models have a wide range of applications in big da...
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| Published in | Computational intelligence and neuroscience Vol. 2021; no. 1; p. 5690868 |
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| Main Authors | , |
| Format | Journal Article |
| Language | English |
| Published |
United States
Hindawi
2021
John Wiley & Sons, Inc |
| Subjects | |
| Online Access | Get full text |
| ISSN | 1687-5265 1687-5273 1687-5273 |
| DOI | 10.1155/2021/5690868 |
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| Abstract | With the development of microelectronic technology and computer systems, the research of motion intention recognition based on multimodal sensors has attracted the attention of the academic community. Deep learning and other nonlinear neural network models have a wide range of applications in big data sets. We propose a motion intention recognition algorithm based on multimodal long-term and short-term spatiotemporal feature fusion. We divide the target data into multiple segments and use a three-dimensional convolutional neural network to extract the short-term spatiotemporal features. The three types of features of the same segment are fused together and input into the LSTM network for time-series modeling to further fuse the features to obtain multimodal long-term spatiotemporal features with higher discrimination. According to the lower limb movement pattern recognition model, the minimum number of muscles and EMG signal characteristics required to accurately recognize the movement state of the lower limbs are determined. This minimizes the redundant calculation cost of the model and ensures the real-time output of the system results. |
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| AbstractList | With the development of microelectronic technology and computer systems, the research of motion intention recognition based on multimodal sensors has attracted the attention of the academic community. Deep learning and other nonlinear neural network models have a wide range of applications in big data sets. We propose a motion intention recognition algorithm based on multimodal long-term and short-term spatiotemporal feature fusion. We divide the target data into multiple segments and use a three-dimensional convolutional neural network to extract the short-term spatiotemporal features. The three types of features of the same segment are fused together and input into the LSTM network for time-series modeling to further fuse the features to obtain multimodal long-term spatiotemporal features with higher discrimination. According to the lower limb movement pattern recognition model, the minimum number of muscles and EMG signal characteristics required to accurately recognize the movement state of the lower limbs are determined. This minimizes the redundant calculation cost of the model and ensures the real-time output of the system results.With the development of microelectronic technology and computer systems, the research of motion intention recognition based on multimodal sensors has attracted the attention of the academic community. Deep learning and other nonlinear neural network models have a wide range of applications in big data sets. We propose a motion intention recognition algorithm based on multimodal long-term and short-term spatiotemporal feature fusion. We divide the target data into multiple segments and use a three-dimensional convolutional neural network to extract the short-term spatiotemporal features. The three types of features of the same segment are fused together and input into the LSTM network for time-series modeling to further fuse the features to obtain multimodal long-term spatiotemporal features with higher discrimination. According to the lower limb movement pattern recognition model, the minimum number of muscles and EMG signal characteristics required to accurately recognize the movement state of the lower limbs are determined. This minimizes the redundant calculation cost of the model and ensures the real-time output of the system results. With the development of microelectronic technology and computer systems, the research of motion intention recognition based on multimodal sensors has attracted the attention of the academic community. Deep learning and other nonlinear neural network models have a wide range of applications in big data sets. We propose a motion intention recognition algorithm based on multimodal long-term and short-term spatiotemporal feature fusion. We divide the target data into multiple segments and use a three-dimensional convolutional neural network to extract the short-term spatiotemporal features. The three types of features of the same segment are fused together and input into the LSTM network for time-series modeling to further fuse the features to obtain multimodal long-term spatiotemporal features with higher discrimination. According to the lower limb movement pattern recognition model, the minimum number of muscles and EMG signal characteristics required to accurately recognize the movement state of the lower limbs are determined. This minimizes the redundant calculation cost of the model and ensures the real-time output of the system results. |
| Audience | Academic |
| Author | Wen, Mofei Wang, Yuwei |
| AuthorAffiliation | 2 Chengdu Sport University, Chengdu, Sichuan 61000, China 1 College of Physical Education, Chengdu University, Chengdu, Sichuan 61000, China |
| AuthorAffiliation_xml | – name: 2 Chengdu Sport University, Chengdu, Sichuan 61000, China – name: 1 College of Physical Education, Chengdu University, Chengdu, Sichuan 61000, China |
| Author_xml | – sequence: 1 givenname: Mofei orcidid: 0000-0002-9713-3031 surname: Wen fullname: Wen, Mofei organization: College of Physical EducationChengdu UniversityChengduSichuan 61000Chinacdu.edu.cn – sequence: 2 givenname: Yuwei surname: Wang fullname: Wang, Yuwei organization: Chengdu Sport UniversityChengduSichuan 61000Chinacdsu.edu.cn |
| BackLink | https://www.ncbi.nlm.nih.gov/pubmed/34188674$$D View this record in MEDLINE/PubMed |
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| CitedBy_id | crossref_primary_10_1155_2022_3596665 crossref_primary_10_3389_frobt_2023_1233328 crossref_primary_10_1155_2023_9754732 crossref_primary_10_1016_j_cja_2022_11_018 crossref_primary_10_1007_s13198_021_01261_1 |
| Cites_doi | 10.1016/j.eswa.2020.114226 10.1016/j.csi.2018.11.006 10.1109/access.2019.2922677 10.1177/1475921719854528 10.1007/s42835-020-00491-w 10.1016/j.aml.2020.106476 10.1016/j.patrec.2020.01.010 10.1007/s11277-019-06969-9 10.1016/j.procs.2020.03.417 10.1016/j.ress.2019.02.009 10.1109/access.2020.3016970 10.1016/j.comnet.2020.107275 10.1109/access.2020.2989378 10.1007/s11277-019-06703-5 10.1109/jsen.2019.2963451 10.11591/ijeecs.v15.i1.pp142-147 10.1080/02522667.2020.1714182 10.1080/02522667.2019.1616910 10.1016/j.future.2019.04.024 10.22219/kinetik.v5i1.987 10.2528/pierm20061806 10.11591/eei.v8i3.1579 10.1109/tpel.2019.2894465 10.1109/TVLSI.2019.2939708 10.1049/iet-gtd.2019.0813 10.1007/s12555-018-0593-9 |
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| Copyright | Copyright © 2021 Mofei Wen and Yuwei Wang. COPYRIGHT 2021 John Wiley & Sons, Inc. Copyright © 2021 Mofei Wen and Yuwei Wang. This is an open access article distributed under the Creative Commons Attribution License (the “License”), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License. https://creativecommons.org/licenses/by/4.0 Copyright © 2021 Mofei Wen and Yuwei Wang. 2021 |
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| References | e_1_2_8_27_2 e_1_2_8_28_2 e_1_2_8_23_2 e_1_2_8_24_2 e_1_2_8_26_2 e_1_2_8_9_2 e_1_2_8_2_2 e_1_2_8_1_2 e_1_2_8_4_2 e_1_2_8_3_2 e_1_2_8_6_2 e_1_2_8_5_2 e_1_2_8_8_2 e_1_2_8_7_2 e_1_2_8_20_2 e_1_2_8_21_2 Li Q. (e_1_2_8_12_2) 2019; 16 e_1_2_8_22_2 e_1_2_8_16_2 e_1_2_8_17_2 e_1_2_8_18_2 e_1_2_8_19_2 e_1_2_8_13_2 e_1_2_8_14_2 e_1_2_8_15_2 Wei W. (e_1_2_8_25_2) 2021 e_1_2_8_10_2 e_1_2_8_11_2 37416582 - Comput Intell Neurosci. 2023 Jun 28;2023:9754732 |
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| SubjectTerms | Accuracy Algorithms Analysis Artificial neural networks Big data Cable television broadcasting industry Deep learning Discriminant analysis Electrodes Electromyography Feature extraction Intention Machine learning Motion Movement Muscle contraction Muscles Nervous system Neural networks Neural Networks, Computer Pattern recognition Prostheses Segments Sensors Smartphones Software |
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| Title | Multimodal Sensor Motion Intention Recognition Based on Three-Dimensional Convolutional Neural Network Algorithm |
| URI | https://dx.doi.org/10.1155/2021/5690868 https://www.ncbi.nlm.nih.gov/pubmed/34188674 https://www.proquest.com/docview/2540407051 https://www.proquest.com/docview/2546981592 https://pubmed.ncbi.nlm.nih.gov/PMC8192210 https://downloads.hindawi.com/journals/cin/2021/5690868.pdf |
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