Title :
Seizure detection methods using a cascade architecture for real-time implantable devices
Author :
Taehoon Kim ; Artan, N.S. ; Selesnick, I.W. ; Chao, H. Jonathan
Author_Institution :
Dept. of Electr. & Comput. Eng., Polytech. Inst. of New York Univ., Brooklyn, NY, USA
Abstract :
Implantable high-accuracy, and low-power seizure detection is a challenge. In this paper, we propose a cascade architecture to combine different seizure detection algorithms to optimize power and accuracy of the overall seizure detection system. The proposed architecture consists of a cascade of two seizure detection stages. In the first-stage detector, a lightweight (low-power) algorithm is used to detect seizure candidates with the understanding that there will be a high number of false positives. In the second-stage detector-and only for the seizure candidates detected in the first detector-a high-accuracy algorithm is used to eliminate the false positives. We show that the proposed cascade architecture can reduce power consumption of seizure detection by 80% with high accuracy, offering a suitable option for real-time implantable seizure detectors.
Keywords :
biomedical equipment; electroencephalography; medical disorders; medical signal processing; neurophysiology; power consumption; cascade architecture; electroencephalography; first-stage detector; implantable high-accuracy low-power seizure detection; lightweight low-power algorithm; power consumption; power optimisation; real-time implantable devices; real-time implantable seizure detectors; second-stage detector; seizure detection algorithms; seizure detection method; Clocks; Computer architecture; Detection algorithms; Detectors; Feature extraction; Power demand; Real-time systems; Algorithms; Computer Simulation; Computer Systems; Electrodes, Implanted; Humans; Seizures; Signal Processing, Computer-Assisted;
Conference_Titel :
Engineering in Medicine and Biology Society (EMBC), 2013 35th Annual International Conference of the IEEE
Conference_Location :
Osaka
DOI :
10.1109/EMBC.2013.6609673