DocumentCode
626918
Title
A 1.5 μW NEO-based spike detector with adaptive-threshold for calibration-free multichannel neural interfaces
Author
Koutsos, Ermis ; Paraskevopoulou, Sivylla E. ; Constandinou, Timothy G.
Author_Institution
Dept. of Electr. & Electron. Eng., Imperial Coll. London, London, UK
fYear
2013
fDate
19-23 May 2013
Firstpage
1922
Lastpage
1925
Abstract
This paper presents a novel front-end circuit for detecting action potentials in extracellular neural recordings. By implementing a real-time, adaptive algorithm to determine an effective threshold for robustly detecting a spike, the need for calibration and/or external monitoring is eliminated. The input signal is first pre-processed by utilising a non-linear energy operator (NEO) to effectively boost the signal-to-noise ratio (SNR) of the spike feature of interest. The spike detection threshold is then determined by tracking the peak NEO response and applying a non-linear gain to realise an adaptive response to different spike amplitudes and background noise levels. The proposed algorithm and its implementation is shown to achieve both accurate and robust spike detection, by minimising falsely detected spikes and/or missed spikes. The system has been implemented in a commercially available 0.18μm technology requiring a total power consumption of 1.5μW from a 1.8 V supply and occupying a compact footprint of only 0.03 mm2 silicon area. The proposed circuit is thus ideally suited for highchannel count, calibration-free, neural interfaces.
Keywords
bioelectric potentials; biomedical electronics; medical signal detection; neurophysiology; NEO-based spike detector; action potential detection; adaptive-threshold; background noise levels; calibration-free multichannel neural interfaces; effective threshold; extracellular neural recordings; front-end circuit; highchannel count; input signal; nonlinear energy operator; nonlinear gain; power 1.5 muW; real-time adaptive algorithm; spike detection threshold; voltage 1.8 V; Detectors; Gain; Gain control; Neurons; Noise level; Sensitivity; Signal to noise ratio;
fLanguage
English
Publisher
ieee
Conference_Titel
Circuits and Systems (ISCAS), 2013 IEEE International Symposium on
Conference_Location
Beijing
ISSN
0271-4302
Print_ISBN
978-1-4673-5760-9
Type
conf
DOI
10.1109/ISCAS.2013.6572243
Filename
6572243
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