An Improved Electronic Image Motion Compensation (IMC) Method of Aerial Full-Frame-Type Area Array CCD Camera Based on the CCD Multiphase Structure and Hardware Implementation
Abstract
:1. Introduction
1.1. Image Motion and Image Motion Compensation (IMC) Methods
1.2. Electronic Image Motion Compensation (IMC) Method
1.3. The Main Contributions of This Article
2. Problem Formulation
2.1. Generation of Non-Synchronous Effect in the Conventional Electronic Image Motion Compensation (IMC) Method
2.2. Analysis of the Conventional Electronic Image Motion Compensation (IMC) Method
3. Improved Electronic Image Motion Compensation (IMC) Method
3.1. Analysis of the Improved Electronic Image Motion Compensation (IMC) Method
3.2. Driving Time Sequence Analysis
4. Hardware Implementation of the Improved Image Motion Compensation (IMC) Method
4.1. The Overall Design Scheme of the FTFCCD4052M Drive Circuit System
4.2. The Hardware Implementation of the Improved Electronic Image Motion Compensation (IMC) Drive Circuit
4.3. Design of the IMC Pulse Pattern Generator
- (1)
- Three-wire bus interface: Provide a three-wire bus interface to the receive system. Receive the IMC time setting information that the system controller sends.
- (2)
- IMC timer and controller: Generate the timing pulse with interval w/4v according to the timer setting during exposure, and generate the trigger signal and the timing switch signal of the SAA8103 according to the working status signal;
- (3)
- IMC V-clock generator: Generate the IMC driver timings (A1–A4 and VA high) as shown in Figure 11 based on the timing pulse;
- (4)
- H-clock selector and switcher: Gate the A1–A4 and VA high signals generated by the IMC V-clock generator during exposure. Gate the A1–A4 and VA high signals generated by the SAA8103 during the charge output and idle periods. The gated A1–A4 signals are allocated to A1T–A4T and A1B–A4B, and the phase relationship of each channel is controlled during the allocation process;
- (5)
- H-clock switcher: The horizontal transfer driver timings C1–C3 generated by the SAA8103 are assigned to C1L–C3L and C1R–C3R, and the phase relationship of each channel is controlled during the distribution process.
- (6)
- Signal buffer forwarding module (buffer): Forwards other driver timings generated by the SAA8103.
5. Improved CCD Electronic Image Motion Compensation (IMC) Imaging Experiment
5.1. The Structure of the Experimental Platform
5.2. Analysis of Two Kinds of Electronic Image Motion Compensation (IMC) in Real-Time
5.3. Discussion
6. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Image Motion Velocity | No IMC | Conventional Electronic IMC Method | Improved Electronic IMC Method |
---|---|---|---|
0.0015 m/s | 0.3120 | 0.9389 | 0.9867 |
0.0009 m/s | 0.4801 | 0.9576 | 0.9945 |
0.00018 m/s | 0.6874 | 0.9639 | 0.9989 |
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Ren, H.; Hu, T.T.; Song, Y.L.; Sun, H.; Liu, B.C.; Gao, M.H. An Improved Electronic Image Motion Compensation (IMC) Method of Aerial Full-Frame-Type Area Array CCD Camera Based on the CCD Multiphase Structure and Hardware Implementation. Sensors 2018, 18, 2632. https://doi.org/10.3390/s18082632
Ren H, Hu TT, Song YL, Sun H, Liu BC, Gao MH. An Improved Electronic Image Motion Compensation (IMC) Method of Aerial Full-Frame-Type Area Array CCD Camera Based on the CCD Multiphase Structure and Hardware Implementation. Sensors. 2018; 18(8):2632. https://doi.org/10.3390/s18082632
Chicago/Turabian StyleRen, Hang, Tao Tao Hu, Yu Long Song, Hui Sun, Bo Chao Liu, and Ming He Gao. 2018. "An Improved Electronic Image Motion Compensation (IMC) Method of Aerial Full-Frame-Type Area Array CCD Camera Based on the CCD Multiphase Structure and Hardware Implementation" Sensors 18, no. 8: 2632. https://doi.org/10.3390/s18082632
APA StyleRen, H., Hu, T. T., Song, Y. L., Sun, H., Liu, B. C., & Gao, M. H. (2018). An Improved Electronic Image Motion Compensation (IMC) Method of Aerial Full-Frame-Type Area Array CCD Camera Based on the CCD Multiphase Structure and Hardware Implementation. Sensors, 18(8), 2632. https://doi.org/10.3390/s18082632