An empirical EEG analysis in brain death diagnosis for adults
Electroencephalogram (EEG) is often used in the confirmatory test for brain death diagnosis in clinical practice. Because EEG recording and monitoring is relatively safe for the patients in deep coma, it is believed to be valuable for either reducing the risk of brain death diagnosis (while comparin...
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Published in | Cognitive neurodynamics Vol. 2; no. 3; pp. 257 - 271 |
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Main Authors | , , , , , , , , |
Format | Journal Article |
Language | English |
Published |
Dordrecht
Springer Netherlands
01.09.2008
Springer Nature B.V |
Subjects | |
Online Access | Get full text |
ISSN | 1871-4080 1871-4099 |
DOI | 10.1007/s11571-008-9047-z |
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Abstract | Electroencephalogram (EEG) is often used in the confirmatory test for brain death diagnosis in clinical practice. Because EEG recording and monitoring is relatively safe for the patients in deep coma, it is believed to be valuable for either reducing the risk of brain death diagnosis (while comparing other tests such as the apnea) or preventing mistaken diagnosis. The objective of this paper is to study several statistical methods for quantitative EEG analysis in order to help bedside or ambulatory monitoring or diagnosis. We apply signal processing and quantitative statistical analysis for the EEG recordings of 32 adult patients. For EEG signal processing, independent component analysis (ICA) was applied to separate the independent source components, followed by Fourier and time-frequency analysis. For quantitative EEG analysis, we apply several statistical complexity measures to the EEG signals and evaluate the differences between two groups of patients: the subjects in deep coma, and the subjects who were categorized as brain death. We report statistically significant differences of quantitative statistics with real-life EEG recordings in such a clinical study, and we also present interpretation and discussions on the preliminary experimental results. |
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AbstractList | Electroencephalogram (EEG) is often used in the confirmatory test for brain death diagnosis in clinical practice. Because EEG recording and monitoring is relatively safe for the patients in deep coma, it is believed to be valuable for either reducing the risk of brain death diagnosis (while comparing other tests such as the apnea) or preventing mistaken diagnosis. The objective of this paper is to study several statistical methods for quantitative EEG analysis in order to help bedside or ambulatory monitoring or diagnosis. We apply signal processing and quantitative statistical analysis for the EEG recordings of 32 adult patients. For EEG signal processing, independent component analysis (ICA) was applied to separate the independent source components, followed by Fourier and time-frequency analysis. For quantitative EEG analysis, we apply several statistical complexity measures to the EEG signals and evaluate the differences between two groups of patients: the subjects in deep coma, and the subjects who were categorized as brain death. We report statistically significant differences of quantitative statistics with real-life EEG recordings in such a clinical study, and we also present interpretation and discussions on the preliminary experimental results. Electroencephalogram (EEG) is often used in the confirmatory test for brain death diagnosis in clinical practice. Because EEG recording and monitoring is relatively safe for the patients in deep coma, it is believed to be valuable for either reducing the risk of brain death diagnosis (while comparing other tests such as the apnea) or preventing mistaken diagnosis. The objective of this paper is to study several statistical methods for quantitative EEG analysis in order to help bedside or ambulatory monitoring or diagnosis. We apply signal processing and quantitative statistical analysis for the EEG recordings of 32 adult patients. For EEG signal processing, independent component analysis (ICA) was applied to separate the independent source components, followed by Fourier and time-frequency analysis. For quantitative EEG analysis, we apply several statistical complexity measures to the EEG signals and evaluate the differences between two groups of patients: the subjects in deep coma, and the subjects who were categorized as brain death. We report statistically significant differences of quantitative statistics with real-life EEG recordings in such a clinical study, and we also present interpretation and discussions on the preliminary experimental results.Electroencephalogram (EEG) is often used in the confirmatory test for brain death diagnosis in clinical practice. Because EEG recording and monitoring is relatively safe for the patients in deep coma, it is believed to be valuable for either reducing the risk of brain death diagnosis (while comparing other tests such as the apnea) or preventing mistaken diagnosis. The objective of this paper is to study several statistical methods for quantitative EEG analysis in order to help bedside or ambulatory monitoring or diagnosis. We apply signal processing and quantitative statistical analysis for the EEG recordings of 32 adult patients. For EEG signal processing, independent component analysis (ICA) was applied to separate the independent source components, followed by Fourier and time-frequency analysis. For quantitative EEG analysis, we apply several statistical complexity measures to the EEG signals and evaluate the differences between two groups of patients: the subjects in deep coma, and the subjects who were categorized as brain death. We report statistically significant differences of quantitative statistics with real-life EEG recordings in such a clinical study, and we also present interpretation and discussions on the preliminary experimental results. |
Author | Hong, Zhen Zhang, Yue Cao, Yang Gu, Fanji Chen, Zhe Cichocki, Andrzej Cao, Jianting Zhu, Guoxian Wang, Bin |
Author_xml | – sequence: 1 givenname: Zhe surname: Chen fullname: Chen, Zhe email: zhechen@neurostat.mgh.harvard.edu organization: Laboratory for Advanced Brain Signal Processing, RIKEN Brain Science Institute, Neuroscience Statistics Research Laboratory, Massachusetts General Hospital, Harvard Medical School, Department of Brain and Cognitive Sciences, Massachusetts Institute of Technology – sequence: 2 givenname: Jianting surname: Cao fullname: Cao, Jianting organization: Laboratory for Advanced Brain Signal Processing, RIKEN Brain Science Institute, Department of Human Robotics, Saitama Institute of Technology – sequence: 3 givenname: Yang surname: Cao fullname: Cao, Yang organization: Brain Science Research Center, Institute of Brain Science, Fudan University – sequence: 4 givenname: Yue surname: Zhang fullname: Zhang, Yue organization: Huashan Hospital, Fudan University – sequence: 5 givenname: Fanji surname: Gu fullname: Gu, Fanji organization: Brain Science Research Center, Institute of Brain Science, Fudan University – sequence: 6 givenname: Guoxian surname: Zhu fullname: Zhu, Guoxian organization: Huashan Hospital, Fudan University – sequence: 7 givenname: Zhen surname: Hong fullname: Hong, Zhen organization: Huashan Hospital, Fudan University – sequence: 8 givenname: Bin surname: Wang fullname: Wang, Bin organization: Department of Electrical Engineering, Fudan University – sequence: 9 givenname: Andrzej surname: Cichocki fullname: Cichocki, Andrzej organization: Laboratory for Advanced Brain Signal Processing, RIKEN Brain Science Institute |
BackLink | https://www.ncbi.nlm.nih.gov/pubmed/19003489$$D View this record in MEDLINE/PubMed |
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SubjectTerms | Adults Apnea Artificial Intelligence Biochemistry Biomedical and Life Sciences Biomedicine Brain Brain death Clinical medicine Cognitive Psychology Coma Computer Science Death Diagnosis EEG Electrodes Electroencephalography Empirical analysis Frequency dependence Hospitals Independent component analysis Medical schools Monitoring Neurosciences Patients Research Article Signal processing Statistical analysis Statistical methods Statistics Telemedicine Time-frequency analysis |
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Title | An empirical EEG analysis in brain death diagnosis for adults |
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