Content of issue 09, volume 25, 2012

1. Geints Yu. E., Zemlyanov A. A., Kabanov A. M., Matvienko G. G., Stepanov A. N. Filament formation beyond linear focus upon femtosecond laser pulse propagation in air. P. 745–752
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Geints Yu. E., Zemlyanov A. A., Kabanov A. M., Matvienko G. G., Stepanov A. N. Filament formation beyond linear focus upon femtosecond laser pulse propagation in air. // Optika Atmosfery i Okeana. 2012. V. 25. No. 09. P. 745–752 [in Russian].
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Geints Yu.E., Zemlyanov A.A., Kabanov A.M., Matvienko G.G., and Stepanov A.N. Filament Formation beyond Linear Focus during Femtosecond Laser Pulse Propagation in Air. // Atmospheric and Oceanic Optics, 2013, V. 26. No. 02. pp. 96–103.
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2. Nosov V. V., Kovadlo P. G., Lukin V. P., Torgaev A. V. Atmospheric coherent turbulence. P. 753–759
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Nosov V. V., Kovadlo P. G., Lukin V. P., Torgaev A. V. Atmospheric coherent turbulence. // Optika Atmosfery i Okeana. 2012. V. 25. No. 09. P. 753–759 [in Russian].
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Nosov V.V., Kovadlo P.G., Lukin V.P., and Torgaev A.V. Atmospheric Coherent Turbulence. // Atmospheric and Oceanic Optics, 2013, V. 26. No. 03. pp. 201–206.
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3. Vinogradova A. A., Veremeichik A. O. Prospective sources of atmospheric aerosol pollution near Nenetzky nature reserve. P. 760–767
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Vinogradova A. A., Veremeichik A. O. Prospective sources of atmospheric aerosol pollution near Nenetzky nature reserve. // Optika Atmosfery i Okeana. 2012. V. 25. No. 09. P. 760–767 [in Russian].
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Vinogradova A.A. and Veremeichik A.O. Potential Sources of Aerosol Pollution of the Atmosphere near the Nenetsky Nature Reserve. // Atmospheric and Oceanic Optics, 2013, V. 26. No. 02. pp. 118–125.
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4. Bedareva T. V., Sviridenkov M. A., Zhuravleva T. B. Retrieval of aerosol optical and microphysical characteristics from ground spectral measurements of direct and diffuse solar radiation. Part 2. Algorithm testing. P. 768–777
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Bedareva T. V., Sviridenkov M. A., Zhuravleva T. B. Retrieval of aerosol optical and microphysical characteristics from ground spectral measurements of direct and diffuse solar radiation. Part 2. Algorithm testing. // Optika Atmosfery i Okeana. 2012. V. 25. No. 09. P. 768–777 [in Russian].
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Bedareva T.V., Sviridenkov M.A., and Zhuravleva T.B. Retrieval of Aerosol Optical and Microphysical Characteristics according to Data from Ground-Based Spectral Measurements of Direct and Diffuse Solar Radiation. Part 2. Algorithm Testing.
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5. Аntokhin P. N., Arshinov M. Yu., Belan B. D., Sklyadneva T. K., Tolmachev G. N. Forecast of variations in ozone and aerosol concentrations based on the forecast for the 24th solar cycle. P. 778–783
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Аntokhin P. N., Arshinov M. Yu., Belan B. D., Sklyadneva T. K., Tolmachev G. N. Forecast of variations in ozone and aerosol concentrations based on the forecast for the 24th solar cycle. // Optika Atmosfery i Okeana. 2012. V. 25. No. 09. P. 778–783 [in Russian].
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6. Troshkin D. N., Kabanov M. V., Pavlov V. E., Romanov A. N., Khvostov I. V. Repetition of cloudiness situations and cloud optical thickness over the West-Siberian plain on the basis of ENVISAT data. P. 784–787
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Troshkin D. N., Kabanov M. V., Pavlov V. E., Romanov A. N., Khvostov I. V. Repetition of cloudiness situations and cloud optical thickness over the West-Siberian plain on the basis of ENVISAT data. // Optika Atmosfery i Okeana. 2012. V. 25. No. 09. P. 784–787 [in Russian].
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7. Pavlov A. N., Stolyarchuk S. Yu., Shmirko K. A., Bukin O. A. Lidar measurements of variability of the ozone vertical distribution caused by the stratospheric-tropospheric exchange at Far Eeast region. P. 788–795
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Pavlov A. N., Stolyarchuk S. Yu., Shmirko K. A., Bukin O. A. Lidar measurements of variability of the ozone vertical distribution caused by the stratospheric-tropospheric exchange at Far Eeast region. // Optika Atmosfery i Okeana. 2012. V. 25. No. 09. P. 788–795 [in Russian].
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Pavlov A.N., Stolyarchuk S.Yu., Shmirko K.A., and Bukin O.A. Lidar Measurements of Variability of the Vertical Ozone Distribution Caused by the Stratosphere–Troposphere Exchange in the Far East Region. // Atmospheric and Oceanic Optics, 2013, V. 26. No. 02. pp. 126–134.
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8. Smalikho I. N. Calculation of the effect of amplification of backscatter of laser radiation, propagating in the turbulent atmosphere, with the use of numerical simulation. P. 796–800
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Smalikho I. N. Calculation of the effect of amplification of backscatter of laser radiation, propagating in the turbulent atmosphere, with the use of numerical simulation. // Optika Atmosfery i Okeana. 2012. V. 25. No. 09. P. 796–800 [in Russian].
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Smalikho I.N. Calculation of the Backscatter Amplification Coefficient of Laser Radiation Propagating in a Turbulent Atmosphere Using Numerical Simulation. // Atmospheric and Oceanic Optics, 2013, V. 26. No. 02. pp. 135–139.
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9. Аntipov O. L., Kanev F. Yu., Tsyro E. I., Kuksenok D. S. Adaptive correction of distortions in multichannel optical system. P. 801–809
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Аntipov O. L., Kanev F. Yu., Tsyro E. I., Kuksenok D. S. Adaptive correction of distortions in multichannel optical system. // Optika Atmosfery i Okeana. 2012. V. 25. No. 09. P. 801–809 [in Russian].
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Antipov O.L., Kanev F.Yu., Tsyro E.I., and Kuksenok D.S. Adaptive Correction of Distortions in a Multichannel Optical System. // Atmospheric and Oceanic Optics, 2013, V. 26. No. 02. pp. 140–148.
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10. Osipov K. Yu., Kapitanov V. A. Numerical modeling of SF6 optoacoustic gas analyzer in atmosphere with frequency modulation of IR heat source. P. 810–814
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Osipov K. Yu., Kapitanov V. A. Numerical modeling of SF6 optoacoustic gas analyzer in atmosphere with frequency modulation of IR heat source. // Optika Atmosfery i Okeana. 2012. V. 25. No. 09. P. 810–814 [in Russian].
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Osipov K.Yu. and Kapitanov V.A. Numerical Modeling of SF6 Photoacoustic Gas Analyzer in the Atmosphere ith Frequency Modulation of Thermal Radiation. // Atmospheric and Oceanic Optics, 2013, V. 26. No. 02. pp. 149–153.
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11. Shchelkanov N. N. Methods for calculation of random errors of the parameters of environment from experimental data. P. 815–821
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Shchelkanov N. N. Methods for calculation of random errors of the parameters of environment from experimental data. // Optika Atmosfery i Okeana. 2012. V. 25. No. 09. P. 815–821 [in Russian].
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12. Vasil’chenko S. S., Serdyukov V. I. Neon emission spectrum as a frequency scale reference for spectrophotometers. P. 822–825
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Vasil’chenko S. S., Serdyukov V. I. Neon emission spectrum as a frequency scale reference for spectrophotometers. // Optika Atmosfery i Okeana. 2012. V. 25. No. 09. P. 822–825 [in Russian].
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Vasil’chenko S.S. and Serdukov V.I. Emission Spectrum of Neon as a Frequency Reference for Spectrophotometers. // Atmospheric and Oceanic Optics, 2013, V. 26. No. 02. pp 54–158.
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13. Domysheva V. M., Sakirko M. V., Pestunov D. A., Panchenko M. V. Seasonal behavior of the CO2 gas exchange process in the «atmosphere–water» system of the littoral zone of Southern Baikal. 3. Autumn. P. 826–832
Bibliographic reference:
Domysheva V. M., Sakirko M. V., Pestunov D. A., Panchenko M. V. Seasonal behavior of the CO2 gas exchange process in the «atmosphere–water» system of the littoral zone of Southern Baikal. 3. Autumn. // Optika Atmosfery i Okeana. 2012. V. 25. No. 09. P. 826–832 [in Russian].
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Domysheva V.M., Sakirko M.V., Pestunov D.A., and Panchenko M.V. Seasonal Behavior of the CO2 Gas Exchange Process in the “Atmosphere–Water” System of Littoral Zone of Southern Baikal. 3. Autumn. // Atmospheric and Oceanic Optics, 2013, V. 26. No. 03. pp. 252–258.
 
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14. Lavric N. L., Mulloev N. U. Concentration dependence of the humic acid fluorescence intensity. P. 833–839
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Lavric N. L., Mulloev N. U. Concentration dependence of the humic acid fluorescence intensity. // Optika Atmosfery i Okeana. 2012. V. 25. No. 09. P. 833–839 [in Russian].
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15. Information. P. 840–842