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1.青岛理工大学 山东省激光绿色智能制造与设备协同创新中心, 山东 青岛 266520
2.工业流体节能与污染控制教育部重点实验室, 山东 青岛 266520
3.奥克兰大学 物理系光子工厂, 新西兰 奥克兰 1010
4.中国科学院 长春光学精密机械与物理研究所, 吉林 长春 130033
5.中国人民解放军91550部队, 辽宁 大连 116023
6.青岛海镭激光科技有限公司, 山东 青岛 266100
[ "张若兰(1996-), 女, 山东济南人, 硕士研究生, 2018年于青岛理工大学获得学士学位, 主要从事水下远距离成像方面的研究。E-mail:1334833054@qq.com" ]
邵晶(1984-), 男, 山东烟台人, 博士, 讲师, 硕士生导师, 2008年于山东大学获得学士学位, 2013年于中科院长春光学精密机械与物理研究所获得博士学位, 新西兰奥克兰大学访问学者, 主要从事光学成像、光学测试、激光加工方面的研究。E-mail:qunying12@163.comSHAO Jing, E-mail: qunying12@163.com
收稿日期:2019-12-10,
修回日期:2020-01-01,
录用日期:2020-1-1,
纸质出版日期:2020-07-15
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张若兰, 邵晶, 聂真威, 等. 短相干照明与偏振相结合的水下远距离成像[J]. 光学 精密工程, 2020,28(7):1485-1493.
Ruo-lan ZHANG, Jing SHAO, Zhen-wei NIE, et al. Underwater long-distance imaging method based on combination of short coherent illumination and polarization[J]. Optics and precision engineering, 2020, 28(7): 1485-1493.
张若兰, 邵晶, 聂真威, 等. 短相干照明与偏振相结合的水下远距离成像[J]. 光学 精密工程, 2020,28(7):1485-1493. DOI: 10.37188/OPE.20202807.1485.
Ruo-lan ZHANG, Jing SHAO, Zhen-wei NIE, et al. Underwater long-distance imaging method based on combination of short coherent illumination and polarization[J]. Optics and precision engineering, 2020, 28(7): 1485-1493. DOI: 10.37188/OPE.20202807.1485.
随着透明海洋战略的提出,低成本的凝视成像装备在水下光学成像中独具优势。然而,后向散射和成像目标难以分离,远距离凝视成像极为困难。更为严重的是,在采集到有效目标图像之前,过强的后向散射噪声已经使图像提前饱和,无法进行后续处理。本文提出了短相干照明与偏振成像相结合的水下远距离成像方法,利用短相干光源照明简化后向散射与成像目标的分离过程,同时,采用偏振技术有效抑制后向散射,防止图像提前饱和,保障目标图像的有效采集。为此,搭建了大型水下光学成像实验平台,并对22 m的远距离水下目标进行了成像试验研究。试验结果表明,该复合成像方法获得的图像信噪比由0.50 dB提高到13.57 dB,设备的抗提前饱和能力提高了1.42倍,优于传统的偏振成像,可以为大范围水下光学监控提供技术支撑。
Considering the development of transparent ocean strategy
low-cost staring imaging equipment have unique advantages in underwater optical imaging. However
it is difficult to separate the backscattering and imaging target
as well as to capture a clear image at a long distance. More importantly
before acquiring the effective target image
the strong scattering noise saturates the image and prevents subsequent processing. Thus
we propose a novel imaging method that combines short coherent illumination and polarization imaging. The short coherent illumination simplifies the separation of the backscattering and imaging target while the polarization technology prevents image saturation in advance and ensures the effective acquisition of the target image. In addition
we built a large-scale underwater optical imaging platform and conducted imaging tests at a long-distance of 22 m. The experimental results showed that the signal-to-noise ratio increased from 0.50 dB to 13.57 dB
and the anti-image early saturation ability of the device increased 1.42 times. These results are superior to the traditional polarization imaging. The proposed composite imaging method can provide technical support for large-range underwater optical monitoring.
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