Literature DB >> 25580059

Genetic Programming and Frequent Itemset Mining to Identify Feature Selection Patterns of iEEG and fMRI Epilepsy Data.

Otis Smart1, Lauren Burrell1.   

Abstract

Pattern classification for intracranial electroencephalogram (iEEG) and functional magnetic resonance imaging (fMRI) signals has furthered epilepsy research toward understanding the origin of epileptic seizures and localizing dysfunctional brain tissue for treatment. Prior research has demonstrated that implicitly selecting features with a genetic programming (GP) algorithm more effectively determined the proper features to discern biomarker and non-biomarker interictal iEEG and fMRI activity than conventional feature selection approaches. However for each the iEEG and fMRI modalities, it is still uncertain whether the stochastic properties of indirect feature selection with a GP yield (a) consistent results within a patient data set and (b) features that are specific or universal across multiple patient data sets. We examined the reproducibility of implicitly selecting features to classify interictal activity using a GP algorithm by performing several selection trials and subsequent frequent itemset mining (FIM) for separate iEEG and fMRI epilepsy patient data. We observed within-subject consistency and across-subject variability with some small similarity for selected features, indicating a clear need for patient-specific features and possible need for patient-specific feature selection or/and classification. For the fMRI, using nearest-neighbor classification and 30 GP generations, we obtained over 60% median sensitivity and over 60% median selectivity. For the iEEG, using nearest-neighbor classification and 30 GP generations, we obtained over 65% median sensitivity and over 65% median selectivity except one patient.

Entities:  

Keywords:  epilepsy; fMRI; feature selection; frequent itemset mining; genetic programming; iEEG; pattern classification

Year:  2015        PMID: 25580059      PMCID: PMC4285716          DOI: 10.1016/j.engappai.2014.12.008

Source DB:  PubMed          Journal:  Eng Appl Artif Intell        ISSN: 0952-1976            Impact factor:   6.212


  57 in total

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Authors:  Andrei V Medvedev; Anthony M Murro; Kimford J Meador
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8.  Mapping interictal oscillations greater than 200 Hz recorded with intracranial macroelectrodes in human epilepsy.

Authors:  Benoît Crépon; Vincent Navarro; Dominique Hasboun; Stéphane Clemenceau; Jacques Martinerie; Michel Baulac; Claude Adam; Michel Le Van Quyen
Journal:  Brain       Date:  2009-11-17       Impact factor: 13.501

9.  Ictal EEG-fMRI in localization of epileptogenic area in patients with refractory neocortical focal epilepsy.

Authors:  Alba Sierra-Marcos; Iratxe Maestro; Carles Falcón; Antonio Donaire; Javier Setoain; Javier Aparicio; Jordi Rumià; Luis Pintor; Teresa Boget; Mar Carreño; Núria Bargalló
Journal:  Epilepsia       Date:  2013-07-29       Impact factor: 5.864

10.  Epileptic seizure detection in EEGs using time-frequency analysis.

Authors:  Alexandros T Tzallas; Markos G Tsipouras; Dimitrios I Fotiadis
Journal:  IEEE Trans Inf Technol Biomed       Date:  2009-03-16
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