Computational Imaging in Dual-Band Infrared Hybrid Optical System with Wide Temperature Range
Abstract
:1. Introduction
2. Basic Principle and Method
2.1. MLDOE Design in Dual-Infrared Waveband
2.2. Computational Imaging in D-RHIOS
3. Design and Analysis
3.1. Dual-Band Hybrid Optical System Design
3.2. DLDOE Design
3.3. Computational Athermalization Image Restoration and Its Evaluation
- (1)
- Figure 8 shows the real and blurred images under different ambient temperatures in the long- and mid-infrared wavebands obtained by image simulation from D-RHIOS. It can be seen that the low diffraction efficiency leads to obvious image blurring;
- (2)
- The degradation function of the system, xpsf(x,y), is spatially variable, because the field of view angle of the system is 2°, which can be approximated as a spatially unchanged system within a small angle range. Therefore, image restoration can be carried out in a spatially unchanging deconvolution method;
- (3)
- The blind deconvblind function in MATLAB is used to blur the image. The PSF of the central field of view is taken as an estimate of the degenerative function xpsf(x,y), and it is substituted with the simulation diagram g(x,y) into the deconvblind function, and the restored image and the restored point diffusion function PSF can be obtained;
- (4)
- The edge of the restored image obtained by this method is seriously distorted, so when importing the image, the image that is slightly larger than the system design field of view can be imported, and the corresponding recovered image is obtained. The light source bitmap, simulation map, and recovery image are all cropped accordingly, and the severe distortion of the edge is removed before comparison;
- (5)
- The image used this time has a field of view height of slightly greater than 2° in the center after cropping, and the image resolution is 961 × 721. The pixel size of the analog detector is required to be 1024 × 768 and the pixel size is 5 microns.
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Paremeter | Value | |
---|---|---|
Imaging optical system | Waveband/μm | 3~5 and 8~12 |
Field of view/° | 10 | |
Effective focal length/mm | 100 | |
Aperture/mm | 50 | |
Ambient temperature | Temperature Range/°C | −40~60 |
Detector | Pixel/μm | 30 |
Image size | 320 × 256 | |
Lens barrel material | AL |
Surface | Type | Radius (mm) | Thickness (mm) | Materials | |
---|---|---|---|---|---|
Object | Standard | Infinity | Infinity | -- | -- |
1 | Standard | 117.744 | 16.481 | AMTIR1 | -- |
2 | Standard | 272.931 | 4.970 | -- | 23.6 |
3 | Standard | 9.793 × 105 | 12.650 | GE | -- |
4 | Standard | 1027.119 | 0.1 | -- | 23.6 |
5 | Standard | 441.957 | 12.819 | ZNS | -- |
6 | Standard | 247.541 | 80.641 | -- | 23.6 |
7 | Standard | 69.898 | 10.444 | ZNSE | -- |
8 | Standard | 998.210 | 1.672 | -- | 23.6 |
9 | Standard | 2194.902 | 9.999 | ZNSE | -- |
10 | Binary | 239.218 | 0.044 | -- | 23.6 |
11 | Binary | 239.218 | 8.820 | GE | -- |
12 | Standard | 111.391 | 12.276 | -- | 23.6 |
Stop | Standard | Infinity | 19.995 | -- | 23.6 |
Image | Standard | Infinity | -- | -- | -- |
Surface | Normal Radius | A1 | A2 |
---|---|---|---|
10 | 100 | −1.4227 × 103 | 1.0222 × 104 |
11 | 100 | −1.4227 × 103 | 1.0222 × 104 |
Waveband | MWIR | LWIR | ||
---|---|---|---|---|
Substrate Materials | GE | ZNSE | GE | ZNSE |
α (×10−6/°C) | 5.7 | 7.1 | 5.7 | 7.1 |
dn/dt (×10−6/°C) | 424 | 63 | 404 | 61 |
Wavebands/µm | 3~5 | 8~12 |
---|---|---|
Design wavelength/µm | 3.8 | 10.2 |
Design order/% | −137 and 138 | −50 and 51 |
H1/µm | 365.013 | |
H2/µm | 174.133 |
Ambient Temperature/°C | BIADE/% | |
---|---|---|
MWIR | LWIR | |
−40 | 45.289 | 83.773 |
20 | 77.799 | 94.990 |
60 | 66.880 | 93.190 |
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Mao, S.; Nie, H.; Lai, T.; Xie, N. Computational Imaging in Dual-Band Infrared Hybrid Optical System with Wide Temperature Range. Sensors 2022, 22, 5291. https://doi.org/10.3390/s22145291
Mao S, Nie H, Lai T, Xie N. Computational Imaging in Dual-Band Infrared Hybrid Optical System with Wide Temperature Range. Sensors. 2022; 22(14):5291. https://doi.org/10.3390/s22145291
Chicago/Turabian StyleMao, Shan, Huaile Nie, Tao Lai, and Na Xie. 2022. "Computational Imaging in Dual-Band Infrared Hybrid Optical System with Wide Temperature Range" Sensors 22, no. 14: 5291. https://doi.org/10.3390/s22145291
APA StyleMao, S., Nie, H., Lai, T., & Xie, N. (2022). Computational Imaging in Dual-Band Infrared Hybrid Optical System with Wide Temperature Range. Sensors, 22(14), 5291. https://doi.org/10.3390/s22145291