Cong-miao SHAN, Yan-zhong ZHAO, Jian-biao CHEN, et al. Optical target recognition based on optical path of Mach-Zehnder interferometric[J]. Optics and precision engineering, 2018, 26(4): 807-815.
DOI:
Cong-miao SHAN, Yan-zhong ZHAO, Jian-biao CHEN, et al. Optical target recognition based on optical path of Mach-Zehnder interferometric[J]. Optics and precision engineering, 2018, 26(4): 807-815. DOI: 10.3788/OPE.20182604.0807.
Optical target recognition based on optical path of Mach-Zehnder interferometric
A new method has been proposed to improve the detection and recognition of optical targets using a laser active detection system. The proposed method uses the scanning interference field to transform the spatial distribution of the target into the time distribution of the detected light
and uses the characteristics of the time distribution of the reflected light for identifying optical targets in a complex background. Expressions giving the optical path difference of coherent beams at any point in the far-field interference light field based on the principle of the Mach-Zehnder interferometer
and the fringe spacing in the interference pattern are obtained. The influence of the fringe spacing in the interference pattern on the time distribution of the light intensity at the point of reflection onthe original target was analyzed. The results revealed that a decrease in the fringe spacing
while causing an increase in the number of peaks in the time distribution of light reflected from the optical target and a decrease in the peak ratio
resulted in no significant change in the time distribution of light reflected from the diffuse background The variance
skewness
and kurtosis of the time distribution of light reflected from the diffuse backgroundand optical target are evidently different. For example
we have observed kurtosis values of 4.37
4.03
3.91
and 62.8
34.97
35.4
respectively
for the two time distributions
reflecting an overall difference of one order of magnitude. The results indicate that the large differences in the time distribution of reflected light
envelope shape
and statistical characteristics can be used to easily distinguish between the optical target and diffuse background.
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Keywords
references
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