DocumentCode
1291710
Title
Multiscale characterization of chronobiological signals based on the discrete wavelet transform
Author
Chan, F.H.Y. ; Wu, B.M. ; Lam, F.K. ; Poon, Paul W F ; Poon, A.M.S.
Author_Institution
Dept. of Electr. & Electron. Eng., Hong Kong Univ., Hong Kong
Volume
47
Issue
1
fYear
2000
Firstpage
88
Lastpage
95
Abstract
To compensate for the deficiency of conventional frequency-domain or time-domain analysis, this paper presents a multiscale approach to characterize the chronobiological time series (CTS) based on a discrete wavelet transform (DWT). We have shown that the local modulus maxima and zero-crossings of the wavelet coefficients at different scales give a complete characterization of rhythmic activities. We further constructed a tree scheme to represent those interacting activities across scales, Using the bandpass filter property of the DWT in the frequency domain, we also characterized the band-related activities by calculating energy in respective rhythmic bands. Moreover, since there is a fast and easily implemented algorithm for the DWT. This new approach may simplify the signal processing and provide a more efficient and complete study of the temporal-frequency dynamics of the CTS. Preliminary results are presented using the proposed method on the locomotion of mice under altered lighting conditions, verifying its competency for CTS analysis.
Keywords
behavioural sciences computing; biology computing; chaos; discrete wavelet transforms; filtering theory; medical signal processing; signal representation; synchronisation; time series; time-frequency analysis; tree data structures; Mallat transform; activity tree; altered lighting conditions; band-related activities; bandpass filter property; biological clocks; chronobiological signals; chronobiological time series; discrete wavelet transform; edge detection algorithms; frequency domain; local modulus maxima; locomotion of mice; multiscale characterization; rhythmic activities; signal processing; smoothing function; synchronization; temporal-frequency dynamics; tree scheme; zero-crossings; Chronobiology; Clocks; Continuous wavelet transforms; Discrete wavelet transforms; Frequency domain analysis; Rhythm; Signal processing algorithms; Time domain analysis; Time frequency analysis; Wavelet transforms; Animals; Circadian Rhythm; Locomotion; Male; Mice; Motor Activity; Signal Processing, Computer-Assisted;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/10.817623
Filename
817623
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