Theoretical model for return signal of laser altimeter
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Theoretical model for return signal of laser altimeter
Optics and Precision EngineeringVol. 15, Issue 1, Pages: 33-39(2007)
作者机构:
1. 武汉大学 电信学院,湖北 武汉 430079
2. 武汉大学 测绘学院,湖北 武汉 430079
作者简介:
基金信息:
DOI:
CLC:TH821;TN247
Received:21 April 2006,
Revised:16 October 2006,
Published Online:30 January 2007,
Published:30 January 2007
稿件说明:
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LI Song, ZHOU Hui, SHI Yan, et al. Theoretical model for return signal of laser altimeter[J]. Optics and precision engineering, 2007, 15(1): 33-39.
DOI:
LI Song, ZHOU Hui, SHI Yan, et al. Theoretical model for return signal of laser altimeter[J]. Optics and precision engineering, 2007, 15(1): 33-39.DOI:
Theoretical model for return signal of laser altimeter
A method for calculating return waveform was deduced by the theory of Fresnel diffraction
and the models of return waveform from ground of slope
ladder and vegetation terrains were estibalished. According to the data of Geoscience Laser Altimeter System(GLAS)
the waveforms of correspond return signal were obtained through computing. The relations between the waveforms of return signal and parameters of three terrains
point angle were analyzed. The conclusions show that the return waveform of slope terrain is approximately Gaussian
whose peak value and pulse width are related with slope angle and beam scanning angle; The return waveform of ladder terrain is approximately model of multi-Gaussian
whose peak value is related with ladder distribution in the footprint and simultaneity
the difference between their centers of gravity is concerned with ladder height and scanning angle; The return waveform of vegetation terrains appears multi-Gausssian
whose peak value is not only related with vegetation position
but also its area. These results provide theoretical foundation for inversion of landform and analysis of resource distribution of the earth’s surface.
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references
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