Title :
Cancellation of Unwanted Doppler Radar Sensor Motion Using Empirical Mode Decomposition
Author :
Mostafanezhad, Isar ; Yavari, E. ; Boric-Lubecke, O. ; Lubecke, Victor M. ; Mandic, Danilo P.
Author_Institution :
Dept. of Electr. Eng., Univ. of Hawaii at Manoa, Honolulu, HI, USA
Abstract :
The operation of microwave Doppler radar for sensing physiological motion signals is heavily compromised under sensor motion. To that end, we investigate the feasibility of applying empirical mode decomposition method in this context, and demonstrate its effectiveness in removing sensor motion artifacts. This method is shown to be effective in canceling unwanted sensor motion with precision sufficient to enable accurate heart rate extraction. Theoretical analysis and simulation results illustrate the potential of the proposed approach for a wide range of frequency separation and amplitude ratios of physiological signals and motion artifacts. Experimental results confirm that separation success is not very sensitive to amplitude ratio. A heart rate is extracted with RMSE within 1 beat per minute even in the presence of mechanical motion and order of magnitude larger in amplitude than that of the heart signal.
Keywords :
Doppler radar; biomedical transducers; cardiology; mean square error methods; medical signal detection; motion compensation; radar detection; sensors; source separation; RMSE; empirical mode decomposition method; frequency separation; heart rate extraction; mechanical motion; motion compensation; physiological motion signal sensing; physiological signals amplitude ratio; root mean square error; unwanted microwave Doppler radar sensor motion cancellation; Doppler radar; Heart rate; Interference; Radar antennas; Biomedical signal detection; doppler radar; empirical mode decomposition; motion compensation;
Journal_Title :
Sensors Journal, IEEE
DOI :
10.1109/JSEN.2013.2238376