DocumentCode
70422
Title
Calibration for a Multichannel Magnetic Sensor Array of a Magnetospinography System
Author
Adachi, Y. ; Higuchi, Masanori ; Oyama, Daisuke ; Haruta, Yasuhiro ; Kawabata, Shogo ; Uehara, Gen
Author_Institution
Kanazawa Inst. of Technol., Kanazawa, Japan
Volume
50
Issue
11
fYear
2014
fDate
Nov. 2014
Firstpage
1
Lastpage
4
Abstract
A method for calibrating a multichannel superconducting quantum interference device (SQUID) magnetic sensor array of a magnetospinography (MSG) system is proposed. The MSG system detects weak magnetic fields generated by the neural activity of the spinal cord using the array of SQUID sensors. To calibrate 120 SQUID magnetic sensors, we employed an array of precisely machined circular coils to generate fundamental magnetic fields instead of employing Helmholtz coils, which are generally used for the calibration of magnetic sensors. The effective position, orientation, and sensitivity of each SQUID sensor were determined simultaneously by a parametric numerical optimization algorithm. These sensor parameters are essential for improving the accuracy of the magnetic source analysis. Using this method, we could calibrate the magnetic sensors even though they were installed in a non-transparent cryostat. In addition, the shifts from the designed position and orientation of the sensors as well as their variability were evaluated.
Keywords
SQUID magnetometers; biomedical transducers; calibration; coils; cryostats; magnetic field measurement; magnetic sensors; neurophysiology; numerical analysis; optimisation; sensor arrays; Helmholtz coil; MSG system; SQUID magnetic sensor array; calibration; machined circular coil; magnetic field detection; magnetic source analysis; magnetospinography system; multichannel superconducting quantum interference device magnetic sensor array; neural activity; nontransparent cryostat; parametric numerical optimization algorithm; spinal cord; Arrays; Calibration; Coils; Magnetic sensors; SQUIDs; Sensitivity; Calibration; magnetic sensors; magnetospinography (MSG); superconducting quantum interference devices (SQUIDs);
fLanguage
English
Journal_Title
Magnetics, IEEE Transactions on
Publisher
ieee
ISSN
0018-9464
Type
jour
DOI
10.1109/TMAG.2014.2326869
Filename
6971532
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