Editing Report on integration across networks: common strategy and common sensors for lidar and aerosol extinction measurements

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The basic setup of a LIDAR system is shown in Figure 1 In principle, a LIDAR system consists of a transmitter and a receiver. Short light pulses in the range of a few to several hundred nanoseconds and specific spectral properties are emitted by the laser. At the receiver side a telescope collects the photons backscattered from the atmosphere. The collected light is then usually transferred toward an optical analyzing system. Here, depending on the application, specific wavelengths or polarization states out of the collected light are selected. The following detector converts the optical signal into an electrical signal. The intensity of this signal as function of the time elapsed after the transmission of the laser pulse is determined electronically and stored in a computer. (Weitkamp, 2005)  
 
The basic setup of a LIDAR system is shown in Figure 1 In principle, a LIDAR system consists of a transmitter and a receiver. Short light pulses in the range of a few to several hundred nanoseconds and specific spectral properties are emitted by the laser. At the receiver side a telescope collects the photons backscattered from the atmosphere. The collected light is then usually transferred toward an optical analyzing system. Here, depending on the application, specific wavelengths or polarization states out of the collected light are selected. The following detector converts the optical signal into an electrical signal. The intensity of this signal as function of the time elapsed after the transmission of the laser pulse is determined electronically and stored in a computer. (Weitkamp, 2005)  
 
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<div class="figure" id="figure1">[[File:EP-D1.4-Fig1-LIDAR-setup.png|center|frame|Figure 1: Principle setup of a LIDAR system. Modified from (Weitkamp, 2005).]]</div>
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FIGURE 1 PRINCIPLE SETUP OF A LIDAR SYSTEM. MODIFIED FROM (WEITKAMP, 2005)  
  
 
====Standard backscatter LIDAR====
 
====Standard backscatter LIDAR====
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EARLINET (www.earlinet.org) was established in 2000 as a research project funded by the European Commission, within the Fifth Framework Program, with the main goal of providing a comprehensive, quantitative, and statistically significant database for the aerosol distribution on a continental scale. EARLINET includes 27 LIDAR stations (Raman LIDAR stations, multi-wave Raman LIDAR stations, back-scatter Raman LIDAR stations: see Figure 2) After the end of this 3-year project, the network activity continued based on a voluntary association and was finally merged into ACTRIS research infrastructure <ref>http://www.actris.eu/</ref> (Pappalardo et al., 2014).  
 
EARLINET (www.earlinet.org) was established in 2000 as a research project funded by the European Commission, within the Fifth Framework Program, with the main goal of providing a comprehensive, quantitative, and statistically significant database for the aerosol distribution on a continental scale. EARLINET includes 27 LIDAR stations (Raman LIDAR stations, multi-wave Raman LIDAR stations, back-scatter Raman LIDAR stations: see Figure 2) After the end of this 3-year project, the network activity continued based on a voluntary association and was finally merged into ACTRIS research infrastructure <ref>http://www.actris.eu/</ref> (Pappalardo et al., 2014).  
 
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<div class="figure" id="figure2">[[File:EP-D1.4-Fig2-EARLINET-stations.jpg|center|frame|Figure 2: Map of the earlinet stations currently active. Red dots indicate multi wavelength raman LIDAR stations (EARLINET core stations). Green dots correspond to stations with at least one raman channel. Violet dots denote LIDARs with only elastic backscatter channels. The ||⊥ symbol indicates that the station has depolarization-measurement capabilities. The "sun" (☀) symbol means collocation with an AERONET sun photometer<ref>http://aeronet.gsfc.nasa.gov/</ref>. Adapted From (Pappalardo Et Al., 2014)]]</div>
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Figure 2: Map of the earlinet stations currently active. Red dots indicate multi wavelength raman LIDAR stations (EARLINET core stations). Green dots correspond to stations with at least one raman channel. Violet dots denote LIDARs with only elastic backscatter channels. The ||⊥ symbol indicates that the station has depolarization-measurement capabilities. The "sun" (☀) symbol means collocation with an AERONET sun photometer<ref>http://aeronet.gsfc.nasa.gov/</ref>. Adapted From (Pappalardo Et Al., 2014)
  
 
===EARLINET single calculus chain (SSC)===
 
===EARLINET single calculus chain (SSC)===

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