Design of control software for a high-speed coherent Doppler lidar system for CO 2 measurement
Author(s) -
Randal L. VanValkenburg,
Jeffrey Y. Beyon,
Grady J. Koch,
Jirong Yu,
Upendra N. Singh,
Michael J. Kavaya
Publication year - 2010
Publication title -
proceedings of spie, the international society for optical engineering/proceedings of spie
Language(s) - English
Resource type - Conference proceedings
SCImago Journal Rank - 0.192
H-Index - 176
eISSN - 1996-756X
pISSN - 0277-786X
DOI - 10.1117/12.871967
Subject(s) - software , computer science , lidar , data acquisition , real time computing , digitization , volume (thermodynamics) , channel (broadcasting) , software system , software design , doppler effect , electronic engineering , computer hardware , software development , remote sensing , engineering , telecommunications , operating system , physics , quantum mechanics , astronomy , geology
The design of the software for a 2-micron coherent high-speed Doppler lidar system for CO2 measurement at NASA Langley Research Center is discussed in this paper. The specific strategy and design topology to meet the requirements of the system are reviewed. In order to attain the high-speed digitization of the different types of signals to be sampled on multiple channels, a carefully planned design of the control software is imperative. Samples of digitized data from each channel and their roles in data analysis post processing are also presented. Several challenges of extremely-fast, high volume data acquisition are discussed. The software must check the validity of each lidar return as well as other monitoring channel data in real-time. For such high-speed data acquisition systems, the software is a key component that enables the entire scope of CO2 measurement studies using commercially available system components.
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