1. Anisimov, O.A., Borshch, S.V., Georgievsky, V.Yu., Insarov, G.E., Kobysheva, N.V., Kostyanoy, A.G., Krenke, A.N., Semenov, S.M., Sirotenko, O.D., Frolov, I.E., Khlebnikova, E.I., Sherstyukov, B.G., Ananicheva, M.D., Anokhin, Yu.A., Asarin, A.E., Asmus, V.V., Bolgov, M.V., Borisova, O.K., Velichko, A.A., Grigoriev, A.V., et al., Metody otsenki posledstvii izmeneniya klimata dlya fizicheskikh i biologicheskikh sistem (Methods for Assessing the Consequences of Climate Change for Physical and Biological Systems), Moscow: Inst. Glob. Klim. Ekol. Ross. Akad. Nauk, 2012.
2. Bao, T., Jia, G., and Xu, X., Wetland heterogeneity determines methane emissions: A pan-Arctic synthesis, Environ. Sci. Technol., 2021, vol. 55, no. 14, pp. 10152–10163.
3. Bartlett, K.B., Harriss, R.C., and Sebacher, D.I., Methane flux from coastal salt marshes, J. Geophys. Res., 1985, vol. 90, pp. 5710–5720.
4. Boch, M.S. and Mazing, V.V., Ekosistemy bolot SSSR (Mire Ecosystems of the USSR), Moscow: Nauka, 1979.
5. Bukvareva, E.N., Rol nazemnykh ekosistem v regulyatsii klimata i mesto Rossii v postkiotskom protsesse (The Role of Terrestrial Ecosystems in Regulating Climate and the Place of Russia in the Post-Kyoto Process), Moscow: KMK, 2010.