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DOI: 10.1055/s-2004-830367
Georg Thieme Verlag KG Stuttgart · New York
Neonatal Seizure Monitoring Using Non-Linear EEG Analysis
Publikationsverlauf
Received: April 22, 2004
Accepted after Revision: September 10, 2004
Publikationsdatum:
15. November 2004 (online)

Abstract
Birth asphyxia is a major concern in neonatal care. Epileptic seizures are associated with subsequent neurodevelopmental deficits. Eighty-five percent of these seizures remain subclinical and therefore an on-line monitoring device is needed. In an earlier study we showed that the synchronization likelihood was able to distinguish between neonatal EEG epochs with and without epileptic seizures. In this study we investigated whether the synchronization likelihood can be used in complete EEGs, without artifact removal. Twenty complete EEGs from 20 neonatal patients were studied. The synchronization likelihood was calculated and correlated with the visual scoring done by 3 experts. In addition, we determined the influence of seizure length on the likelihood of detection. Using the raw unfiltered EEG data we found a sensitivity of 65.9 % and a specificity of 89.8 % for the detection of seizure activity in each epoch. In addition, the seizure detection rate was 100 % when the seizures lasted for 100 seconds or more. The synchronization likelihood seems to be a useful tool in the automatic monitoring of epileptic seizures in infants on the neonatal ward. Due to the retrospective nature of our study, the consequences for clinical intervention cannot yet be determined and prospective studies are needed. Therefore, we will conduct a prospective study on the neonatal intensive care unit with a recently developed on-line version of the synchronization likelihood analysis.
Key words
Neonatal - hypoxia-ischaemia - seizure - EEG - detection synchronization - non-linear
References
- 1 Altenburg J, Vermeulen R J, Strijers R LM, Fetter W PF, Stam C J. Seizure detection in the neonatal EEG with synchronization likelihood. Clin Neurophysiol. 2003; 114 50-55
- 2 Bell A H, McClure B G, Hicks E M. Power spectral analysis of the EEG of term infants following birth asphyxia. Dev Med Child Neurol. 1990; 32 990-998
- 3 Bye A M, Flanagan D. Spatial and temporal characteristics of neonatal seizures. Epilepsia. 1995; 36 1009-1016
- 4 McBride M C, Laroia N, Guillet R. Electrographic seizures in neonates correlate with poor neurodevelopmental outcome. Neurology. 2000; 55 506-513
- 5 Eaton D M, Toet M, Livingston J, Smith I, Levene M. Evaluation of the Cerebro Trac 2500 for monitoring of cerebral function in the neonatal intensive care. Neuropediatrics. 1994; 25 122-128
- 6 Gotman J, Flanagan D, Zhang J, Rosenblatt B. Automatic seizure detection in the newborn: methods and initial evaluation. Electroenceph Clin Neurophysiol. 1997; 103 356-362
- 7 Gotman J, Flanagan D, Rosenblatt B, Bye A, Mizrahi E M. Evaluation of an automatic seizure detection method for the newborn EEG. Electroenceph Clin Neurophysiol. 1997; 103 363-369
- 8 Hellström-Westas L, Rosen I, Svenningsen N W. Predictive value of early continuous amplitude integrated EEG recordings on outcome after severe birth asphyxia in full term infants. Arch Dis Child Fetal Neonatal Ed. 1995; 72 F34-38
- 9 Khan Y U, Gotman J. Wavelet based automatic seizure detection in intracerebral electroencephalogram. Clin Neurophysiol. 2003; 114 898-908
- 10 Liu A, Hahn J S, Heldt G P, Coen R W. Detection of neonatal seizures through computerized EEG analysis. Electroencephalogr Clin Neurophysiol. 1992; 82 30-37
- 11 Pijn J P, Neerven van J, Noest A, Lopez da Silva F H. Chaos or noise in EEG signals, dependence on state and brain site. Electroencephalogr Clin Neurophysiol. 1991; 79 371-381
- 12 Pijn J P, Veliz D N, Heyden van der M J, DeGoede J, Veelen van C WM, Lopes da Silva F H. Nonlinear dynamics of epileptic seizures on basis of intracranial EEG recordings. Brain Topography. 1997; 94 249-270
- 13 Quyen Le Van M, Martinerie J, Navarro V, Boon P, D'Havé, Adam C. et al . Anticipation of epileptic seizures from standard EEG recordings. Lancet. 2001; 357 183-188
- 14 Rennie J M, Chorley G, Boylan G B, Pressler R, Nguyen Y, Hooper R. Non-expert use of the cerebral function monitor for neonatal seizure detection. Arch Dis Child Fetal Neonatal Ed. 2004; 89 F37-F40
- 15 Romeo M G, Tina L G, Cilauro S, Morano C, Virzi G. et al . The importance of using the cerebral function monitor (CFM) in the neurological prognosis of neonates in intensive care. Pediatr Med Chir. 1998; 20 197-199
- 16 Selton D, Andre M. Prognosis of hypoxic-ischaemic encephalopathy in full-term newborns value of neonatal electroencephalography. Neuropediatrics. 1997; 28 276-280
- 17 Stam C J. Chaos, continuous EEG, and cognitive mechanisms: a future for clinical neurophysiology. Am J END Technol. 2003; 43 1-17
- 18 Stam C J, Dijk van B W. Synchronization likelihood; an unbiased measure of generalized synchronization in multivariate data sets. Physica D. 2002; 163 236-251
- 19 Takens F. Detecting strange attractors in turbulence. Lecture notes in mathematics. 1981; 898 366-381
- 20 Toet M C, Hellström-Westas L, Groenendaal F, Eken P, de Vries L S. Amplitude integrated EEG 3 and 6 hours after birth in full term neonates with hypoxic-ischaemic encephalopathy. Arch Dis Fetal Neonatal Ed. 1999; 81 F19-F23
- 21 Toet M C, van der Meij W, de Vries L S, Uiterwaal C S, van Huffelen K C. Comparison between simultaneously recorded amplitude integrated electroencephalogram (cerebral function monitor) and standard electroencephalogram in neonates. Pediatrics. 2002; 109 772-779
- 22 Volpe J J. Neurology of the Newborn. 4th ed. Philadelphia; W. B. Saunders 2001
- 23 Wilson S B, Scheuer M L, Plummer C, Young B, Pacia S. Seizure detection: correlation of human experts. Clin Neurophysiol. 2003; 114 2156-2164
Dr. R. J. Vermeulen
Department of Pediatric Neurology
Vrije Universiteit Medisch Centrum
De Boelelaan 1117
Postbox 7057
1007 MB Amsterdam
The Netherlands
eMail: rj.vermeulen@vumc.nl