Document Type
Article
Language
eng
Publication Date
3-2010
Publisher
Institute of Electrical and Electronic Engineers (IEEE)
Source Publication
IEEE Sensors Journal
Source ISSN
1530-437X
Abstract
This study is motivated by the emergence of a new class of tunable infrared spectral-imaging sensors that offer the ability to dynamically vary the sensor's intrinsic spectral response from frame to frame in an electronically controlled fashion. A manifestation of this is when a sequence of dissimilar spectral responses is periodically realized, whereby in every period of acquired imagery, each frame is associated with a distinct spectral band. Traditional scene-based global shift estimation algorithms are not applicable to such spectrally heterogeneous video sequences, as a pixel value may change from frame to frame as a result of both global motion and varying spectral response. In this paper, a novel algorithm is proposed and examined to fuse a series of coarse global shift estimates between periodically sampled pairs of nonadjacent frames to estimate motion between consecutive frames; each pair corresponds to two nonadjacent frames of the same spectral band. The proposed algorithm outperforms three alternative methods, with the average error being one half of that obtained by using an equal weights version of the proposed algorithm, one-fourth of that obtained by using a simple linear interpolation method, and one-twentieth of that obtained by using a nai¿ve correlation-based direct method.
Recommended Citation
Giles, Todd M.; Hayat, Majeed M.; and Krishna, Sanjay, "Shift Estimation Algorithm for Dynamic Sensors With Frame-to-Frame Variation in Their Spectral Response" (2010). Electrical and Computer Engineering Faculty Research and Publications. 509.
https://epublications.marquette.edu/electric_fac/509
ADA accessible version
Comments
Accepted version. IEEE Sensors Journal, Vol. 10, No. 3 (March 2010): 686-692. DOI. © 2010 IEEE. Used with permission.
Majeed M. Hayat was affiliated with the University of New Mexico at the time of publication.