Lidar inversion with variable backscatter/extinction ratios
1PAR Associates, 1077 La Quinta, Las Cruces, New Mexico 88005, USA.
Applied Optics
|June 1, 1985
Summary
This study presents a new method for solving the lidar equation by allowing the relationship between backscatter and extinction to vary. This approach improves the accuracy of atmospheric extinction measurements, even with background scatterers.
Area of Science:
- Atmospheric optics
- Remote sensing technology
- Lidar data analysis
Background:
- Traditional lidar equation inversion relies on a fixed power-law relationship between backscatter and extinction.
- This assumption can limit the accuracy of atmospheric property retrieval.
Purpose of the Study:
- To develop an alternative formulation of the single-scattering lidar equation.
- To improve the accuracy of atmospheric extinction coefficient retrieval.
Main Methods:
- The study proposes a modified lidar equation where the proportionality factor in the power-law relationship is a function of range or extinction.
- The generalized equation incorporates the effects of background Rayleigh scatterers.
Main Results:
- The alternative formulation remains solvable, providing an improved inversion solution for extinction.
- Even approximate descriptions of deviations from the fixed power-law yield better results.
Conclusions:
- The proposed method offers a more flexible and accurate approach to lidar data inversion.
- This advancement enhances the capability of remote sensing for atmospheric profiling.
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