FPGA IMPLEMENTATION
OF HUANG HILBERT TRANSFORM FOR CLASSIFICATION OF EPILEPTIC SEIZURES USING
ARTIFICIAL NEURAL NETWORK
G.Deepika1
and K.S.Rao2
1Research
scholar at JNTU,Hyderabad , Asso.Prof at RRS college of Engg,
2Director
& Professor in ECE Dept,Anurag group of Institutions, Hyderabad
ABSTRACT
The most common brain disorders due to
abnormal burst of electrical discharges are termed as Epileptic seizures. This
work proposes an efficient approach to extract the features of epileptic
seizures by decomposing EEG into band limited signals termed as IMF’s by
empirical decomposition EMD. Huang Hilbert Transform is applied on these IMF’s
for calculating Instantaneous frequencies and are classified using artificial
neural network trained by Back propagation algorithm. The results indicate an
accuracy of 97.87%. The algorithm is implemented using Verilog HDL on Zynq 7000
family FPGA evaluation board using Xilinx vivado 2015.2 version.
KEYWORDS
EEG, IMF,EMD
Orginal Source URL: http://aircconline.com/vlsics/V10N3/10319vlsi02.pdf
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