A Sparse Representation-Based Algorithm for Pattern Localization in Brain Imaging Data Analysis
Considering the two-class classification problem in brain imaging data analysis, we propose a sparse representation-based multi-variate pattern analysis (MVPA) algorithm to localize brain activation patterns corresponding to different stimulus classes/brain states respectively. Feature selection can...
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Published in | PloS one Vol. 7; no. 12; p. e50332 |
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Main Authors | , , , , , |
Format | Journal Article |
Language | English |
Published |
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Public Library of Science
05.12.2012
Public Library of Science (PLoS) |
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Online Access | Get full text |
ISSN | 1932-6203 1932-6203 |
DOI | 10.1371/journal.pone.0050332 |
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Abstract | Considering the two-class classification problem in brain imaging data analysis, we propose a sparse representation-based multi-variate pattern analysis (MVPA) algorithm to localize brain activation patterns corresponding to different stimulus classes/brain states respectively. Feature selection can be modeled as a sparse representation (or sparse regression) problem. Such technique has been successfully applied to voxel selection in fMRI data analysis. However, single selection based on sparse representation or other methods is prone to obtain a subset of the most informative features rather than all. Herein, our proposed algorithm recursively eliminates informative features selected by a sparse regression method until the decoding accuracy based on the remaining features drops to a threshold close to chance level. In this way, the resultant feature set including all the identified features is expected to involve all the informative features for discrimination. According to the signs of the sparse regression weights, these selected features are separated into two sets corresponding to two stimulus classes/brain states. Next, in order to remove irrelevant/noisy features in the two selected feature sets, we perform a nonparametric permutation test at the individual subject level or the group level. In data analysis, we verified our algorithm with a toy data set and an intrinsic signal optical imaging data set. The results show that our algorithm has accurately localized two class-related patterns. As an application example, we used our algorithm on a functional magnetic resonance imaging (fMRI) data set. Two sets of informative voxels, corresponding to two semantic categories (i.e., "old people" and "young people"), respectively, are obtained in the human brain. |
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AbstractList | Considering the two-class classification problem in brain imaging data analysis, we propose a sparse representation-based multi-variate pattern analysis (MVPA) algorithm to localize brain activation patterns corresponding to different stimulus classes/brain states respectively. Feature selection can be modeled as a sparse representation (or sparse regression) problem. Such technique has been successfully applied to voxel selection in fMRI data analysis. However, single selection based on sparse representation or other methods is prone to obtain a subset of the most informative features rather than all. Herein, our proposed algorithm recursively eliminates informative features selected by a sparse regression method until the decoding accuracy based on the remaining features drops to a threshold close to chance level. In this way, the resultant feature set including all the identified features is expected to involve all the informative features for discrimination. According to the signs of the sparse regression weights, these selected features are separated into two sets corresponding to two stimulus classes/brain states. Next, in order to remove irrelevant/noisy features in the two selected feature sets, we perform a nonparametric permutation test at the individual subject level or the group level. In data analysis, we verified our algorithm with a toy data set and an intrinsic signal optical imaging data set. The results show that our algorithm has accurately localized two class-related patterns. As an application example, we used our algorithm on a functional magnetic resonance imaging (fMRI) data set. Two sets of informative voxels, corresponding to two semantic categories (i.e., "old people" and "young people"), respectively, are obtained in the human brain. Considering the two-class classification problem in brain imaging data analysis, we propose a sparse representation-based multi-variate pattern analysis (MVPA) algorithm to localize brain activation patterns corresponding to different stimulus classes/brain states respectively. Feature selection can be modeled as a sparse representation (or sparse regression) problem. Such technique has been successfully applied to voxel selection in fMRI data analysis. However, single selection based on sparse representation or other methods is prone to obtain a subset of the most informative features rather than all. Herein, our proposed algorithm recursively eliminates informative features selected by a sparse regression method until the decoding accuracy based on the remaining features drops to a threshold close to chance level. In this way, the resultant feature set including all the identified features is expected to involve all the informative features for discrimination. According to the signs of the sparse regression weights, these selected features are separated into two sets corresponding to two stimulus classes/brain states. Next, in order to remove irrelevant/noisy features in the two selected feature sets, we perform a nonparametric permutation test at the individual subject level or the group level. In data analysis, we verified our algorithm with a toy data set and an intrinsic signal optical imaging data set. The results show that our algorithm has accurately localized two class-related patterns. As an application example, we used our algorithm on a functional magnetic resonance imaging (fMRI) data set. Two sets of informative voxels, corresponding to two semantic categories (i.e., "old people" and "young people"), respectively, are obtained in the human brain.Considering the two-class classification problem in brain imaging data analysis, we propose a sparse representation-based multi-variate pattern analysis (MVPA) algorithm to localize brain activation patterns corresponding to different stimulus classes/brain states respectively. Feature selection can be modeled as a sparse representation (or sparse regression) problem. Such technique has been successfully applied to voxel selection in fMRI data analysis. However, single selection based on sparse representation or other methods is prone to obtain a subset of the most informative features rather than all. Herein, our proposed algorithm recursively eliminates informative features selected by a sparse regression method until the decoding accuracy based on the remaining features drops to a threshold close to chance level. In this way, the resultant feature set including all the identified features is expected to involve all the informative features for discrimination. According to the signs of the sparse regression weights, these selected features are separated into two sets corresponding to two stimulus classes/brain states. Next, in order to remove irrelevant/noisy features in the two selected feature sets, we perform a nonparametric permutation test at the individual subject level or the group level. In data analysis, we verified our algorithm with a toy data set and an intrinsic signal optical imaging data set. The results show that our algorithm has accurately localized two class-related patterns. As an application example, we used our algorithm on a functional magnetic resonance imaging (fMRI) data set. Two sets of informative voxels, corresponding to two semantic categories (i.e., "old people" and "young people"), respectively, are obtained in the human brain. |
Audience | Academic |
Author | Long, Jinyi Li, Yuanqing Lu, Haidong He, Lin Gu, Zhenghui Sun, Pei |
AuthorAffiliation | 3 Laboratory for Cognitive Brain Mapping, RIKEN Brain Science Institute 2-1 Hirosawa, Wako, Saitama, Japan 2 Institute of Neuroscience, State Key Laboratory of Neuroscience, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai, People's Republic of China 1 Center for Brain Computer Interfaces and Brain Information Processing, South China University of Technology, Guangzhou, People's Republic of China 4 Department of Psychology, Tsinghua University, Beijing, People's Republic of China University of Minnesota, United States of America |
AuthorAffiliation_xml | – name: 1 Center for Brain Computer Interfaces and Brain Information Processing, South China University of Technology, Guangzhou, People's Republic of China – name: University of Minnesota, United States of America – name: 3 Laboratory for Cognitive Brain Mapping, RIKEN Brain Science Institute 2-1 Hirosawa, Wako, Saitama, Japan – name: 4 Department of Psychology, Tsinghua University, Beijing, People's Republic of China – name: 2 Institute of Neuroscience, State Key Laboratory of Neuroscience, Shanghai Institutes for Biological Sciences, Chinese Academy of Sciences, Shanghai, People's Republic of China |
Author_xml | – sequence: 1 givenname: Yuanqing surname: Li fullname: Li, Yuanqing – sequence: 2 givenname: Jinyi surname: Long fullname: Long, Jinyi – sequence: 3 givenname: Lin surname: He fullname: He, Lin – sequence: 4 givenname: Haidong surname: Lu fullname: Lu, Haidong – sequence: 5 givenname: Zhenghui surname: Gu fullname: Gu, Zhenghui – sequence: 6 givenname: Pei surname: Sun fullname: Sun, Pei |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/23227167$$D View this record in MEDLINE/PubMed |
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Notes | ObjectType-Article-1 SourceType-Scholarly Journals-1 ObjectType-Feature-2 content type line 14 content type line 23 ObjectType-Undefined-3 Competing Interests: The authors have declared that no competing interests exist. Conceived and designed the experiments: YL HL PS. Performed the experiments: YL HL. Analyzed the data: JL YL LH PS. Wrote the paper: YL PS. Designed the algorithm: YL. Contributed to the writing: ZG. |
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SubjectTerms | Algorithms Artificial intelligence Biology Brain Brain - physiology Brain mapping Data analysis Data processing Datasets Decoding Diagnostic imaging Functional magnetic resonance imaging Generalized linear models Humans Information management Information processing Laboratories Linear programming Localization Magnetic resonance Magnetic Resonance Imaging Medical imaging Medicine Methods Multivariate analysis Neuroimaging Neurosciences NMR Nuclear magnetic resonance Older people Optical communication Pattern analysis Permutations Regression analysis Representations Variables Young adults |
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Title | A Sparse Representation-Based Algorithm for Pattern Localization in Brain Imaging Data Analysis |
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