Title: Sparse Aperture Imaging
1Sparse Aperture Imaging
Matthew P Dierking Air Force Research Laboratory
Sensors Directorate Electro-Optical Combat ID
Branch
Nicholas J Miller Bradley D Duncan LOCI Universit
y of Dayton (Ohio)
2Sparse Aperture Imaging
- Objective
- Resolution metrics (PSF and MTF)
- Designing optimized sparse arrays
- Inter-aperture phase aberrations
- Imaging experiment
- Future work
- Conclusions
3Why construct sparse aperture imaging arrays?
- The resolution of a conventional,
diffraction-limited optical imaging system is
determined by its aperture diameter. - Can we synthesize a large effective aperture
(yielding higher resolution) from multiple,
strategically located sub-apertures? YES. - We will construct a sparse aperture array from
identical, unit-diameter, diffraction-limited
circular apertures.
4Sparse aperture array with resolution equivalent
to a single, large aperture
Sparse aperture figure of merit, fill factor
5Sparse Aperture Imaging
- Objective
- Resolution metrics (PSF and MTF)
- Designing optimized sparse arrays
- Inter-aperture phase aberrations
- Imaging experiment
- Future work
- Conclusions
6PSF resolution metrics
- FWHM of central peak
- Peak-to-Integrated-Side- Lobe-Ratio, PISLR
7MTF resolution metrics
raxx
- Spatial frequency cutoff
- Mid-frequency MTF level
rmin
We define, Deff rmin(lf)
8Sparse Aperture Imaging
- Objective
- Resolution metrics (PSF and MTF)
- Designing optimized sparse arrays
- Inter-aperture phase aberrations
- Imaging experiment
- Future work
- Conclusions
9Optimized two-dimensional arraysGolay described
point arrays having compact nonredundant
autocorrelations
Autocorrelation
Point array
10PSF and MTF of a Golay-3 array
11PSF and MTF of a Golay-6 array
12PSF and MTF of a Golay-9 array
13PSF and MTF of a Golay-12 array
14Golay-9 array Optimization by expansion factor
Expansion factor s/D
15Golay-9 array 1.0 expansion factor
16Golay-9 array 1.1 expansion factor
17Golay-9 array 1.2 expansion factor
18Golay-9 array 1.3 expansion factor
19Golay-9 array 1.4 expansion factor
20Golay-9 array 1.5 expansion factor
21Golay-9 array 1.6 expansion factor
22Golay-9 array 1.7 expansion factor
23Golay-9 array Optimization by expansion factor
Expansion factor considered optimized when
MTFmin 0.03 in passband
24Quality measures of optimized N sub-aperture
Golay arrays
Selected as optimal sparse aperture array
Recall our figure of merit,
25Sparse Aperture Imaging
- Objective
- Resolution metrics (PSF and MTF)
- Designing optimized sparse arrays
- Inter-aperture phase aberrations
- Imaging experiment
- Future work
- Conclusions
26Golay-9 array Piston added to a single
sub-aperture
27Golay-9 array 0l/10 piston applied to single
sub-aperture
28Golay-9 array 1l/10 piston applied to single
sub-aperture
29Golay-9 array 2l/10 piston applied to single
sub-aperture
30Golay-9 array 3l/10 piston applied to single
sub-aperture
31Golay-9 array 4l/10 piston applied to single
sub-aperture
32Golay-9 array 5l/10 piston applied to single
sub-aperture
33Golay-9 array 6l/10 piston applied to single
sub-aperture
34Golay-9 array 7l/10 piston applied to single
sub-aperture
35Golay-9 array 8l/10 piston applied to single
sub-aperture
36Golay-9 array 9l/10 piston applied to single
sub-aperture
37Golay-9 array 10l/10 piston applied to single
sub-aperture
38Golay-9 array Tilt aberrations on a single
sub-aperture
39Golay-9 array 0l/5 tilt applied to single
sub-aperture
40Golay-9 array l/5 tilt applied to single
sub-aperture
41Golay-9 array 2l/5 tilt applied to single
sub-aperture
42Golay-9 array 3l/5 tilt applied to single
sub-aperture
43Golay-9 array 4l/5 tilt applied to single
sub-aperture
44Golay-9 array 5l/5 tilt applied to single
sub-aperture
45Golay-9 array 6l/5 tilt applied to single
sub-aperture
46Golay-9 array 7l/5 tilt applied to single
sub-aperture
47Golay-9 array 8l/5 tilt applied to single
sub-aperture
48Golay-9 array 9l/5 tilt applied to single
sub-aperture
49Golay-9 array 10l/5 tilt applied to single
sub-aperture
50Sparse Aperture Imaging
- Objective
- Resolution metrics (PSF and MTF)
- Designing optimized sparse arrays
- Inter-aperture phase aberrations
- Imaging experiment
- Future work
- Conclusions
51Incoherently imaging a resolution target with a
Golay aperture array
Golay pupil masks
52ISO 12233 resolution target Transmissive chrome
on glass chart Chart dimensions 15.2 by 11.4 mm
53Horizontal and vertical MTFs of single aperture
54Horizontal and vertical MTFs of Golay-3 array
55Horizontal and vertical MTFs of Golay-6 array
56Horizontal and vertical MTFs of Golay-9 array
57Horizontal and vertical MTFs of Golay-12 array
58MTF attenuation means reduced contrast compared
to filled apertures
- MTF is a measure of contrast transference. We
observed that, , for a
sparse aperture imaging system which means
reduced contrast at middle spatial frequencies. - Therefore, a practical sparse aperture imaging
system should employ a post-detection restoration
filter, such as a least squares Wiener filter, to
improve image contrast.
59Golay-1 raw and Wiener restored images
60Golay-9 raw and Wiener restored images
61Future work
- Instead of using the large imaging lens to
combine optical beams prior to detection, use a
coherent detection method to directly measure
both the focal plane intensity and phase at each
sub-aperture.
62Synthesis of sub-aperture field by a single
imaging lens (a) Post-detection synthesis of
intensity images by virtual lens (b)
63Conclusions
- Optical sparse aperture imaging was theoretically
shown to enhance resolution over a single
monolithic aperture of equal total area. - The enhanced resolution was verified by
calculation of MTF from experimental edge images. - The resolution gain of a sparse aperture imaging
system comes at a cost -- loss of contrast and
reduced SNR. We successfully applied a
restoration filter to recover lost contrast. - Sparse arrays require accurate phasing of the
multiple sub-apertures.