Epileptic Seizure Prediction Using Diffusion Distance and Bayesian Linear Discriminate Analysis on Intracranial EEG

Int J Neural Syst. 2018 Feb;28(1):1750043. doi: 10.1142/S0129065717500435. Epub 2017 Aug 16.

Abstract

Epilepsy is a chronic neurological disorder characterized by sudden and apparently unpredictable seizures. A system capable of forecasting the occurrence of seizures is crucial and could open new therapeutic possibilities for human health. This paper addresses an algorithm for seizure prediction using a novel feature - diffusion distance (DD) in intracranial Electroencephalograph (iEEG) recordings. Wavelet decomposition is conducted on segmented electroencephalograph (EEG) epochs and subband signals at scales 3, 4 and 5 are utilized to extract the diffusion distance. The features of all channels composing a feature vector are then fed into a Bayesian Linear Discriminant Analysis (BLDA) classifier. Finally, postprocessing procedure is applied to reduce false prediction alarms. The prediction method is evaluated on the public intracranial EEG dataset, which consists of 577.67[Formula: see text]h of intracranial EEG recordings from 21 patients with 87 seizures. We achieved a sensitivity of 85.11% for a seizure occurrence period of 30[Formula: see text]min and a sensitivity of 93.62% for a seizure occurrence period of 50[Formula: see text]min, both with the seizure prediction horizon of 10[Formula: see text]s. Our false prediction rate was 0.08/h. The proposed method yields a high sensitivity as well as a low false prediction rate, which demonstrates its potential for real-time prediction of seizures.

Keywords: Bayesian linear discriminant analysis; DWT; Seizure prediction; diffusion distance; intracranial EEG.

Publication types

  • Evaluation Study

MeSH terms

  • Algorithms
  • Bayes Theorem
  • Brain / physiopathology*
  • Diagnosis, Computer-Assisted / methods*
  • Discriminant Analysis
  • Drug Resistant Epilepsy / diagnosis*
  • Drug Resistant Epilepsy / physiopathology
  • Electrocorticography* / methods
  • Epilepsies, Partial / diagnosis*
  • Epilepsies, Partial / physiopathology
  • False Positive Reactions
  • Humans
  • Linear Models
  • Prognosis
  • Seizures / diagnosis*
  • Seizures / etiology
  • Seizures / physiopathology
  • Sensitivity and Specificity
  • Time Factors
  • Wavelet Analysis