DocumentCode
872473
Title
On an Optical Inertial Navigation System—Part II
Author
Iyer, Ram ; Toda, Magdalena ; Holsapple, Raymond
Author_Institution
Dept. of Math. & Stat., Texas Tech Univ., Lubbock, TX
Volume
53
Issue
8
fYear
2008
Firstpage
1864
Lastpage
1875
Abstract
In part I, we developed the optical transfer function of the lens-fiber system for quasi-monochromatic, incoherent excitation, and studied the properties of the kernel function. We also studied the cross-talk between the fibers of the lens-fiber system for a worker bee and an artificial eye, and showed that it is not significant. This allows us in this paper, to consider a mathematical idealization of a corneal surface as a continuum of lens-fiber systems. We consider this surface to be a regular immersion of class rges 2 that is the image in R3 of a simply connected, open set in R2. We study the change in the power propagated in the fiber due to virtual motions of the corneal surface and show that for motion along the axis, the power propagated is invariant. Finally, we show that the ego-motion estimation problem is well-posed for sufficiently rich quasi-monochromatic, incoherent excitation on an allowable, regular corneal surface, and further show that the solution does not depend on the parameterization of the surfaces or the parameters of the aircraft (such as mass and inertia matrix) on which the ONS is mounted.
Keywords
aircraft control; inertial navigation; motion estimation; optical transfer function; aircraft; artificial eye; corneal surface; ego-motion estimation problem; lens-fiber system; optical inertial navigation system; optical transfer function; worker bee; Biomedical optical imaging; Correlators; Force control; Inertial navigation; Linear systems; Motion detection; Optical crosstalk; Optical sensors; Optical surface waves; Transfer functions; Optical inertial navigation system (ONS);
fLanguage
English
Journal_Title
Automatic Control, IEEE Transactions on
Publisher
ieee
ISSN
0018-9286
Type
jour
DOI
10.1109/TAC.2008.929390
Filename
4631514
Link To Document