{"count":87817,"next":"https://catalogue.ceda.ac.uk/api/v3/onlineresources/?format=json&limit=100&offset=38500","previous":"https://catalogue.ceda.ac.uk/api/v3/onlineresources/?format=json&limit=100&offset=38300","results":[{"ob_id":42613,"function":"documentation","linkage":"https://climate.esa.int/projects/snow","name":"ESA CCI Snow project website","relatedTo":{"ob_id":31205,"uuid":"3b3fd2daf3d34c1bb4a09efeaf3b8ea9","short_code":"ob"}},{"ob_id":42614,"function":"documentation","linkage":"https://climate.esa.int/projects/snow/snow-key-documents/","name":"ESA CCI Snow key documents","relatedTo":{"ob_id":31205,"uuid":"3b3fd2daf3d34c1bb4a09efeaf3b8ea9","short_code":"ob"}},{"ob_id":42615,"function":"documentation","linkage":"https://climate.esa.int/","name":"ESA Climate Change Initiative Website","relatedTo":{"ob_id":31205,"uuid":"3b3fd2daf3d34c1bb4a09efeaf3b8ea9","short_code":"ob"}},{"ob_id":42616,"function":"documentation","linkage":"https://climate.esa.int/documents/287/Snow_cci_D4.3_PUG_v2.0_r2MH0hU.pdf","name":"Product User Guide","relatedTo":{"ob_id":31205,"uuid":"3b3fd2daf3d34c1bb4a09efeaf3b8ea9","short_code":"ob"}},{"ob_id":42617,"function":"documentation","linkage":"http://dx.doi.org/10.5067/MODIS/MOD021KM.006","name":"MODIS Characterization Support Team, MODIS Adaptive Processing System, 2012. Level 1 and Atmosphere Archive and Distribution System (LAADS):  MOD021KM","relatedTo":{"ob_id":32512,"uuid":"b7f993e0c3e745dc9975da8aa580a654","short_code":"acq"}},{"ob_id":42618,"function":"documentation","linkage":"http://dx.doi.org/10.5067/MODIS/MOD03.006","name":"MODIS Characterization Support Team, MODIS Adaptive Processing System, 2012. Level 1 and Atmosphere Archive and Distribution System (LAADS): MOD03","relatedTo":{"ob_id":32512,"uuid":"b7f993e0c3e745dc9975da8aa580a654","short_code":"acq"}},{"ob_id":42619,"function":"documentation","linkage":"http://dx.doi.org/10.5067/MODIS/MOD021KM.006","name":"MODIS Characterization Support Team, MODIS Adaptive Processing System, 2012. Level 1 and Atmosphere Archive and Distribution System (LAADS):  MOD021KM","relatedTo":{"ob_id":32513,"uuid":"2ab35d990acc499cb6ca2c476897f536","short_code":"acq"}},{"ob_id":42620,"function":"documentation","linkage":"http://dx.doi.org/10.5067/MODIS/MOD03.006","name":"MODIS Characterization Support Team, MODIS Adaptive Processing System, 2012. Level 1 and Atmosphere Archive and Distribution System (LAADS): MOD03","relatedTo":{"ob_id":32513,"uuid":"2ab35d990acc499cb6ca2c476897f536","short_code":"acq"}},{"ob_id":42621,"function":"documentation","linkage":"https://catalogue.ceda.ac.uk/uuid/b382ebe6679d44b8b0e68ea4ef4b701c","name":"ESA Land Cover CCI project team; Defourny, P. (2019): ESA Land Cover Climate Change Initiative (Land_Cover_cci): Global Land Cover Maps, Version 2.0.7. Centre for Environmental Data Analysis, 13.04.2021. https://catalogue.ceda.ac.uk/uuid/b382ebe6679d44b8b0e68ea4ef4b701c","relatedTo":{"ob_id":32514,"uuid":"b69f14b6767e444d93c02a6e0cecf2ae","short_code":"comp"}},{"ob_id":42622,"function":"documentation","linkage":"https://science.sciencemag.org/content/342/6160/850","name":"Hansen, M. C., P. V. Potapov, R. Moore, M. Hancher, S. A. Turubanova, A. Tyukavina, D. Thau, S. V. Stehman, S. J. Goetz, T. R. Loveland, A. Kommareddy, A. Egorov, L. Chini, C. O. Justice, and J. R. G. Townshend. 2013. “High-Resolution Global Maps of 21st-Century Forest Cover Change.” Science 342 (15 November): 850–53. Data available on-line from:  http://earthenginepartners.appspot.com/science-2013-global-forest","relatedTo":{"ob_id":32514,"uuid":"b69f14b6767e444d93c02a6e0cecf2ae","short_code":"comp"}},{"ob_id":42623,"function":"documentation","linkage":"https://doi.org/10.1016/j.rse.2014.09.018","name":"Metsämäki, S., Pulliainen, J., Salminen, M., Luojus, K., Wiesmann, A., Solberg R. and Ripper, E. 2015. Introduction to GlobSnow Snow Extent products with considerations for accuracy assessment. Remote Sensing of Environment, 156, 96–108. https://doi.org/10.1016/j.rse.2014.09.018","relatedTo":{"ob_id":32514,"uuid":"b69f14b6767e444d93c02a6e0cecf2ae","short_code":"comp"}},{"ob_id":42624,"function":"documentation","linkage":"https://doi.org/10.1016/j.rse.2018.04.038","name":"Salminen, M., Pulliainen, J., Metsämäki, S., Ikonen, J., Heinilä, K. (2018). Determination of uncertainty characteristics for the satellite-based estimation of fractional snow cover. Remote Sensing Environ., 212, 103-113. https://doi.org/10.1016/j.rse.2018.04.038","relatedTo":{"ob_id":31204,"uuid":"ef8eb5ff84994f2ca416dbb2df7f72c7","short_code":"ob"}},{"ob_id":42625,"function":"documentation","linkage":"http://dx.doi.org/10.5067/MODIS/MOD03.006","name":"MODIS Characterization Support Team, MODIS Adaptive Processing System, 2012. Level 1 and Atmosphere Archive and Distribution System (LAADS):  MOD03","relatedTo":{"ob_id":31204,"uuid":"ef8eb5ff84994f2ca416dbb2df7f72c7","short_code":"ob"}},{"ob_id":42626,"function":"documentation","linkage":"http://dx.doi.org/10.5067/MODIS/MOD021KM.006","name":"MODIS Characterization Support Team, MODIS Adaptive Processing System, 2012. Level 1 and Atmosphere Archive and Distribution System (LAADS):  MOD021KM","relatedTo":{"ob_id":31204,"uuid":"ef8eb5ff84994f2ca416dbb2df7f72c7","short_code":"ob"}},{"ob_id":42627,"function":"documentation","linkage":"https://climate.esa.int/projects/snow","name":"ESA CCI Snow project website","relatedTo":{"ob_id":31204,"uuid":"ef8eb5ff84994f2ca416dbb2df7f72c7","short_code":"ob"}},{"ob_id":42628,"function":"documentation","linkage":"https://climate.esa.int/projects/snow/snow-key-documents/","name":"ESA CCI Snow key documents","relatedTo":{"ob_id":31204,"uuid":"ef8eb5ff84994f2ca416dbb2df7f72c7","short_code":"ob"}},{"ob_id":42629,"function":"documentation","linkage":"https://climate.esa.int","name":"ESA Climate Change Initiative Website","relatedTo":{"ob_id":31204,"uuid":"ef8eb5ff84994f2ca416dbb2df7f72c7","short_code":"ob"}},{"ob_id":42630,"function":"documentation","linkage":"https://climate.esa.int/documents/287/Snow_cci_D4.3_PUG_v2.0_r2MH0hU.pdf","name":"Product User Guide","relatedTo":{"ob_id":31204,"uuid":"ef8eb5ff84994f2ca416dbb2df7f72c7","short_code":"ob"}},{"ob_id":42631,"function":"documentation","linkage":"https://doi.org/10.1016/j.rse.2014.09.018","name":"Metsämäki, S., Pulliainen, J., Salminen, M., Luojus, K., Wiesmann, A., Solberg R. and Ripper, E. 2015. Introduction to GlobSnow Snow Extent products with considerations for accuracy assessment. Remote Sensing of Environment, 156, 96–108. https://doi.org/10.1016/j.rse.2014.09.018","relatedTo":{"ob_id":32516,"uuid":"209e3c585d8b4d5b8f36f6c59687e1e9","short_code":"comp"}},{"ob_id":42633,"function":"documentation","linkage":"https://catalogue.ceda.ac.uk/uuid/b382ebe6679d44b8b0e68ea4ef4b701c","name":"ESA Land Cover CCI project team; Defourny, P. (2019): ESA Land Cover Climate Change Initiative (Land_Cover_cci): Global Land Cover Maps, Version 2.0.7. Centre for Environmental Data Analysis, 13.04.2021. https://catalogue.ceda.ac.uk/uuid/b382ebe6679d44b8b0e68ea4ef4b701c","relatedTo":{"ob_id":32516,"uuid":"209e3c585d8b4d5b8f36f6c59687e1e9","short_code":"comp"}},{"ob_id":42634,"function":"documentation","linkage":"https://climate.esa.int/projects/snow/snow-key-documents/","name":"ESA CCI Snow key documents","relatedTo":{"ob_id":31210,"uuid":"5484dc1392bc43c1ace73ba38a22ac56","short_code":"ob"}},{"ob_id":42635,"function":"documentation","linkage":"https://climate.esa.int/projects/snow/","name":"ESA CCI Snow project website","relatedTo":{"ob_id":31210,"uuid":"5484dc1392bc43c1ace73ba38a22ac56","short_code":"ob"}},{"ob_id":42636,"function":"documentation","linkage":"https://climate.esa.int","name":"ESA Climate Change Initiative website","relatedTo":{"ob_id":31210,"uuid":"5484dc1392bc43c1ace73ba38a22ac56","short_code":"ob"}},{"ob_id":42637,"function":"documentation","linkage":"https://climate.esa.int/documents/287/Snow_cci_D4.3_PUG_v2.0_r2MH0hU.pdf","name":"Product User Guide","relatedTo":{"ob_id":31210,"uuid":"5484dc1392bc43c1ace73ba38a22ac56","short_code":"ob"}},{"ob_id":42640,"function":"documentation","linkage":"https://doi.org/10.1016/j.rse.2014.09.018","name":"Metsämäki, S., Pulliainen, J., Salminen, M., Luojus, K., Wiesmann, A., Solberg R. and Ripper, E. 2015. Introduction to GlobSnow Snow Extent products with considerations for accuracy assessment. Remote Sensing of Environment, 156, 96–108. https://doi.org/10.1016/j.rse.2014.09.018","relatedTo":{"ob_id":32519,"uuid":"0d8dfce486af4455abb556666416887b","short_code":"comp"}},{"ob_id":42641,"function":"documentation","linkage":"https://science.sciencemag.org/content/342/6160/850","name":"Hansen, M. C., P. V. Potapov, R. Moore, M. Hancher, S. A. Turubanova, A. Tyukavina, D. Thau, S. V. Stehman, S. J. Goetz, T. R. Loveland, A. Kommareddy, A. Egorov, L. Chini, C. O. Justice, and J. R. G. Townshend. 2013. “High-Resolution Global Maps of 21st-Century Forest Cover Change.” Science 342 (15 November): 850–53. Data available on-line from:  http://earthenginepartners.appspot.com/science-2013-global-forest","relatedTo":{"ob_id":32519,"uuid":"0d8dfce486af4455abb556666416887b","short_code":"comp"}},{"ob_id":42642,"function":"documentation","linkage":"https://catalogue.ceda.ac.uk/uuid/b382ebe6679d44b8b0e68ea4ef4b701c","name":"ESA Land Cover CCI project team; Defourny, P. (2019): ESA Land Cover Climate Change Initiative (Land_Cover_cci): Global Land Cover Maps, Version 2.0.7. Centre for Environmental Data Analysis, 13.04.2021. https://catalogue.ceda.ac.uk/uuid/b382ebe6679d44b8b0e68ea4ef4b701c","relatedTo":{"ob_id":32519,"uuid":"0d8dfce486af4455abb556666416887b","short_code":"comp"}},{"ob_id":42643,"function":"documentation","linkage":"https://catalogue.ceda.ac.uk/uuid/b382ebe6679d44b8b0e68ea4ef4b701c","name":"ESA Land Cover CCI project team; Defourny, P. (2019): ESA Land Cover Climate Change Initiative (Land_Cover_cci): Global Land Cover Maps, Version 2.0.7. Centre for Environmental Data Analysis, 13.04.2021. https://catalogue.ceda.ac.uk/uuid/b382ebe6679d44b8b0e68ea4ef4b701c","relatedTo":{"ob_id":32524,"uuid":"d60e0d8070734e39951a356adbb8b497","short_code":"comp"}},{"ob_id":42644,"function":"documentation","linkage":"https://doi.org/10.1016/j.rse.2014.09.018","name":"Metsämäki, S., Pulliainen, J., Salminen, M., Luojus, K., Wiesmann, A., Solberg R. and Ripper, E. 2015. Introduction to GlobSnow Snow Extent products with considerations for accuracy assessment. Remote Sensing of Environment, 156, 96–108. https://doi.org/10.1016/j.rse.2014.09.018","relatedTo":{"ob_id":32524,"uuid":"d60e0d8070734e39951a356adbb8b497","short_code":"comp"}},{"ob_id":42645,"function":"documentation","linkage":"https://www.bas.ac.uk/polar-operations/sites-and-facilities/facility/airborne-science-and-technology/twin-otter-meteorological-airborne-science-instrumentation-masin/","name":"BAS Airborne Meteorology","relatedTo":{"ob_id":32531,"uuid":"0ad5bcadb29e4b4998f5dcd26375f349","short_code":"ob"}},{"ob_id":42646,"function":"documentation","linkage":"https://www.bas.ac.uk/polar-operations/sites-and-facilities/facility/airborne-science-and-technology/twin-otter-meteorological-airborne-science-instrumentation-masin/","name":"BAS Airborne Meteorology","relatedTo":{"ob_id":32535,"uuid":"52f829aaebdb4989b748e006d02e2029","short_code":"ob"}},{"ob_id":42647,"function":"documentation","linkage":"https://www.bas.ac.uk/polar-operations/sites-and-facilities/facility/airborne-science-and-technology/twin-otter-meteorological-airborne-science-instrumentation-masin/","name":"BAS Airborne Meteorology","relatedTo":{"ob_id":32539,"uuid":"e4bc229019c6442ea7060fcf6a97a600","short_code":"ob"}},{"ob_id":42648,"function":"documentation","linkage":"https://www.bas.ac.uk/polar-operations/sites-and-facilities/facility/airborne-science-and-technology/twin-otter-meteorological-airborne-science-instrumentation-masin/","name":"BAS Airborne Meteorology","relatedTo":{"ob_id":32543,"uuid":"3a91ec64a9f8440ebb565ea9411e2a89","short_code":"ob"}},{"ob_id":42649,"function":"documentation","linkage":"https://www.bas.ac.uk/polar-operations/sites-and-facilities/facility/airborne-science-and-technology/twin-otter-meteorological-airborne-science-instrumentation-masin/","name":"BAS Airborne Meteorology","relatedTo":{"ob_id":32547,"uuid":"2b290f3138fe431a83f5203d690a4893","short_code":"ob"}},{"ob_id":42650,"function":"documentation","linkage":"https://www.bas.ac.uk/polar-operations/sites-and-facilities/facility/airborne-science-and-technology/twin-otter-meteorological-airborne-science-instrumentation-masin/","name":"BAS Airborne Meteorology","relatedTo":{"ob_id":32551,"uuid":"257233ecd1c64544862d93ce09ac5aee","short_code":"ob"}},{"ob_id":42651,"function":"documentation","linkage":"https://www.bas.ac.uk/polar-operations/sites-and-facilities/facility/airborne-science-and-technology/twin-otter-meteorological-airborne-science-instrumentation-masin/","name":"BAS Airborne Meteorology","relatedTo":{"ob_id":32555,"uuid":"161295e94805427b9a295057f66f60e4","short_code":"ob"}},{"ob_id":42652,"function":"documentation","linkage":"https://www.bas.ac.uk/polar-operations/sites-and-facilities/facility/airborne-science-and-technology/twin-otter-meteorological-airborne-science-instrumentation-masin/","name":"BAS Airborne Meteorology","relatedTo":{"ob_id":32559,"uuid":"ab10878dace441b6b6bdd2baa8528b92","short_code":"ob"}},{"ob_id":42653,"function":"documentation","linkage":"https://www.bas.ac.uk/polar-operations/sites-and-facilities/facility/airborne-science-and-technology/twin-otter-meteorological-airborne-science-instrumentation-masin/","name":"BAS Airborne Meteorology","relatedTo":{"ob_id":32563,"uuid":"51976f12732a491b95433d008afc291f","short_code":"ob"}},{"ob_id":42654,"function":"documentation","linkage":"https://www.bas.ac.uk/polar-operations/sites-and-facilities/facility/airborne-science-and-technology/twin-otter-meteorological-airborne-science-instrumentation-masin/","name":"BAS Airborne Meteorology","relatedTo":{"ob_id":32567,"uuid":"4f8c49b537c54b85af1538a74685c6a5","short_code":"ob"}},{"ob_id":42655,"function":"documentation","linkage":"https://www.bas.ac.uk/polar-operations/sites-and-facilities/facility/airborne-science-and-technology/twin-otter-meteorological-airborne-science-instrumentation-masin/","name":"BAS Airborne Meteorology","relatedTo":{"ob_id":32571,"uuid":"378139c15c784477bfdd7bd8c204c0f6","short_code":"ob"}},{"ob_id":42656,"function":"documentation","linkage":"https://www.liverpool.ac.uk/ness-gardens/","name":"University of Liverpool Ness Botanical Gardens website","relatedTo":{"ob_id":32579,"uuid":"f8dd9f066edd472c8cd59e607bd2ad4b","short_code":"plat"}},{"ob_id":42657,"function":"documentation","linkage":"https://utils.ceda.ac.uk/cgi-bin/midas_stations/station_details.cgi.py?id=1130&db=midas_stations","name":"Ness Gardens (src_id: 1130) MIDAS Station record","relatedTo":{"ob_id":32579,"uuid":"f8dd9f066edd472c8cd59e607bd2ad4b","short_code":"plat"}},{"ob_id":42658,"function":"documentation","linkage":"https://doi.org/10.5194/acp-21-7695-2021","name":"Hindley, N. P., Wright, C. J., Gadian, A. M., Hoffmann, L., Hughes, J. K., Jackson, D. R., King, J. C., Mitchell, N. J., Moffat-Griffin, T., Moss, A. C., Vosper, S. B., and Ross, A. N.: Stratospheric gravity waves over the mountainous island of South Georgia: testing a high-resolution dynamical model with 3-D satellite observations and radiosondes, Atmos. Chem. Phys., 21, 7695–7722, https://doi.org/10.5194/acp-21-7695-2021, 2021.","relatedTo":{"ob_id":32528,"uuid":"ca00a04014ad4426abc03e952f793dde","short_code":"ob"}},{"ob_id":42659,"function":"documentation","linkage":"https://doi.org/10.1175/BAMS-D-16-0151.1","name":"Jackson, D. R., Gadian, A., Hindley, N. P., Hoffmann, L., Hughes, J., King, J., Moffat-Griffin, T., Moss, A. C., Ross, A. N., Vosper, S. B., Wright, C. J., and Mitchell, N. J. (2018). The South Georgia Wave Experiment: A Means for Improved Analysis of Gravity Waves and Low-Level Wind Impacts Generated from Mountainous Islands. Bulletin of the American Meteorological Society 99, 5, 1027-1040, available from: https://doi.org/10.1175/BAMS-D-16-0151.1","relatedTo":{"ob_id":32528,"uuid":"ca00a04014ad4426abc03e952f793dde","short_code":"ob"}},{"ob_id":42660,"function":"documentation","linkage":"https://doi.org/10.1002/qj.2566","name":"Vosper, S.B. (2015), Mountain waves and wakes generated by South Georgia: implications for drag parametrization. Q.J.R. Meteorol. Soc., 141: 2813-2827. https://doi.org/10.1002/qj.2566","relatedTo":{"ob_id":32528,"uuid":"ca00a04014ad4426abc03e952f793dde","short_code":"ob"}},{"ob_id":42661,"function":"documentation","linkage":"https://doi.org/10.5194/acp-21-7695-2021","name":"Hindley, N. P., Wright, C. J., Gadian, A. M., Hoffmann, L., Hughes, J. K., Jackson, D. R., King, J. C., Mitchell, N. J., Moffat-Griffin, T., Moss, A. C., Vosper, S. B., and Ross, A. N.: Stratospheric gravity waves over the mountainous island of South Georgia: testing a high-resolution dynamical model with 3-D satellite observations and radiosondes, Atmos. Chem. Phys., 21, 7695–7722, https://doi.org/10.5194/acp-21-7695-2021, 2021.","relatedTo":{"ob_id":32521,"uuid":"4edcd686e1e74e2f8e4cf108eb054cc8","short_code":"ob"}},{"ob_id":42662,"function":"documentation","linkage":"https://doi.org/10.1175/BAMS-D-16-0151.1","name":"Jackson, D. R., Gadian, A., Hindley, N. P., Hoffmann, L., Hughes, J., King, J., Moffat-Griffin, T., Moss, A. C., Ross, A. N., Vosper, S. B., Wright, C. J., and Mitchell, N. J. (2018). The South Georgia Wave Experiment: A Means for Improved Analysis of Gravity Waves and Low-Level Wind Impacts Generated from Mountainous Islands. Bulletin of the American Meteorological Society 99, 5, 1027-1040, available from: https://doi.org/10.1175/BAMS-D-16-0151.1","relatedTo":{"ob_id":32521,"uuid":"4edcd686e1e74e2f8e4cf108eb054cc8","short_code":"ob"}},{"ob_id":42663,"function":"documentation","linkage":"https://doi.org/10.1002/qj.2566","name":"Vosper, S.B. (2015), Mountain waves and wakes generated by South Georgia: implications for drag parametrization. Q.J.R. Meteorol. Soc., 141: 2813-2827. https://doi.org/10.1002/qj.2566","relatedTo":{"ob_id":32521,"uuid":"4edcd686e1e74e2f8e4cf108eb054cc8","short_code":"ob"}},{"ob_id":42664,"function":"documentation","linkage":"https://doi.org/10.5194/acp-21-7695-2021","name":"Hindley, N. P., Wright, C. J., Gadian, A. M., Hoffmann, L., Hughes, J. K., Jackson, D. R., King, J. C., Mitchell, N. J., Moffat-Griffin, T., Moss, A. C., Vosper, S. B., and Ross, A. N.: Stratospheric gravity waves over the mountainous island of South Georgia: testing a high-resolution dynamical model with 3-D satellite observations and radiosondes, Atmos. Chem. Phys., 21, 7695–7722, https://doi.org/10.5194/acp-21-7695-2021, 2021.","relatedTo":{"ob_id":32469,"uuid":"9314b7b6417049beb18570632b435e5b","short_code":"ob"}},{"ob_id":42665,"function":"documentation","linkage":"https://doi.org/10.1175/BAMS-D-16-0151.1","name":"Jackson, D. R., Gadian, A., Hindley, N. P., Hoffmann, L., Hughes, J., King, J., Moffat-Griffin, T., Moss, A. C., Ross, A. N., Vosper, S. B., Wright, C. J., and Mitchell, N. J. (2018). The South Georgia Wave Experiment: A Means for Improved Analysis of Gravity Waves and Low-Level Wind Impacts Generated from Mountainous Islands. Bulletin of the American Meteorological Society 99, 5, 1027-1040, available from: https://doi.org/10.1175/BAMS-D-16-0151.1","relatedTo":{"ob_id":32469,"uuid":"9314b7b6417049beb18570632b435e5b","short_code":"ob"}},{"ob_id":42666,"function":"documentation","linkage":"https://doi.org/10.1002/qj.2566","name":"Vosper, S.B. (2015), Mountain waves and wakes generated by South Georgia: implications for drag parametrization. Q.J.R. Meteorol. Soc., 141: 2813-2827. https://doi.org/10.1002/qj.2566","relatedTo":{"ob_id":32469,"uuid":"9314b7b6417049beb18570632b435e5b","short_code":"ob"}},{"ob_id":42667,"function":"documentation","linkage":"https://doi.org/10.5194/acp-21-7695-2021","name":"Hindley, N. P., Wright, C. J., Gadian, A. M., Hoffmann, L., Hughes, J. K., Jackson, D. R., King, J. C., Mitchell, N. J., Moffat-Griffin, T., Moss, A. C., Vosper, S. B., and Ross, A. N.: Stratospheric gravity waves over the mountainous island of South Georgia: testing a high-resolution dynamical model with 3-D satellite observations and radiosondes, Atmos. Chem. Phys., 21, 7695–7722, https://doi.org/10.5194/acp-21-7695-2021, 2021.","relatedTo":{"ob_id":32324,"uuid":"6cd2bd9bf3e143009a7df234e4a8f55c","short_code":"ob"}},{"ob_id":42668,"function":"documentation","linkage":"https://doi.org/10.1175/BAMS-D-16-0151.1","name":"Jackson, D. R., Gadian, A., Hindley, N. P., Hoffmann, L., Hughes, J., King, J., Moffat-Griffin, T., Moss, A. C., Ross, A. N., Vosper, S. B., Wright, C. J., and Mitchell, N. J. (2018). The South Georgia Wave Experiment: A Means for Improved Analysis of Gravity Waves and Low-Level Wind Impacts Generated from Mountainous Islands. Bulletin of the American Meteorological Society 99, 5, 1027-1040, available from: https://doi.org/10.1175/BAMS-D-16-0151.1","relatedTo":{"ob_id":32324,"uuid":"6cd2bd9bf3e143009a7df234e4a8f55c","short_code":"ob"}},{"ob_id":42669,"function":"documentation","linkage":"https://doi.org/10.1002/qj.2566","name":"Vosper, S.B. (2015), Mountain waves and wakes generated by South Georgia: implications for drag parametrization. Q.J.R. Meteorol. Soc., 141: 2813-2827. https://doi.org/10.1002/qj.2566","relatedTo":{"ob_id":32324,"uuid":"6cd2bd9bf3e143009a7df234e4a8f55c","short_code":"ob"}},{"ob_id":42670,"function":"documentation","linkage":"https://doi.org/10.5194/acp-21-7695-2021","name":"Hindley, N. P., Wright, C. J., Gadian, A. M., Hoffmann, L., Hughes, J. K., Jackson, D. R., King, J. C., Mitchell, N. J., Moffat-Griffin, T., Moss, A. C., Vosper, S. B., and Ross, A. N.: Stratospheric gravity waves over the mountainous island of South Georgia: testing a high-resolution dynamical model with 3-D satellite observations and radiosondes, Atmos. Chem. Phys., 21, 7695–7722, https://doi.org/10.5194/acp-21-7695-2021, 2021.","relatedTo":{"ob_id":32527,"uuid":"6af300ef78e649e38719f1e1a53007f1","short_code":"ob"}},{"ob_id":42671,"function":"documentation","linkage":"https://doi.org/10.1175/BAMS-D-16-0151.1","name":"Jackson, D. R., Gadian, A., Hindley, N. P., Hoffmann, L., Hughes, J., King, J., Moffat-Griffin, T., Moss, A. C., Ross, A. N., Vosper, S. B., Wright, C. J., and Mitchell, N. J. (2018). The South Georgia Wave Experiment: A Means for Improved Analysis of Gravity Waves and Low-Level Wind Impacts Generated from Mountainous Islands. Bulletin of the American Meteorological Society 99, 5, 1027-1040, available from: https://doi.org/10.1175/BAMS-D-16-0151.1","relatedTo":{"ob_id":32527,"uuid":"6af300ef78e649e38719f1e1a53007f1","short_code":"ob"}},{"ob_id":42672,"function":"documentation","linkage":"https://doi.org/10.1002/qj.2566","name":"Vosper, S.B. (2015), Mountain waves and wakes generated by South Georgia: implications for drag parametrization. Q.J.R. Meteorol. Soc., 141: 2813-2827. https://doi.org/10.1002/qj.2566","relatedTo":{"ob_id":32527,"uuid":"6af300ef78e649e38719f1e1a53007f1","short_code":"ob"}},{"ob_id":42673,"function":"documentation","linkage":"https://doi.org/10.5194/acp-21-7695-2021","name":"Hindley, N. P., Wright, C. J., Gadian, A. M., Hoffmann, L., Hughes, J. K., Jackson, D. R., King, J. C., Mitchell, N. J., Moffat-Griffin, T., Moss, A. C., Vosper, S. B., and Ross, A. N.: Stratospheric gravity waves over the mountainous island of South Georgia: testing a high-resolution dynamical model with 3-D satellite observations and radiosondes, Atmos. Chem. Phys., 21, 7695–7722, https://doi.org/10.5194/acp-21-7695-2021, 2021.","relatedTo":{"ob_id":32522,"uuid":"a945f294d03143d8b5197e65f8005915","short_code":"ob"}},{"ob_id":42674,"function":"documentation","linkage":"https://doi.org/10.1175/BAMS-D-16-0151.1","name":"Jackson, D. R., Gadian, A., Hindley, N. P., Hoffmann, L., Hughes, J., King, J., Moffat-Griffin, T., Moss, A. C., Ross, A. N., Vosper, S. B., Wright, C. J., and Mitchell, N. J. (2018). The South Georgia Wave Experiment: A Means for Improved Analysis of Gravity Waves and Low-Level Wind Impacts Generated from Mountainous Islands. Bulletin of the American Meteorological Society 99, 5, 1027-1040, available from: https://doi.org/10.1175/BAMS-D-16-0151.1","relatedTo":{"ob_id":32522,"uuid":"a945f294d03143d8b5197e65f8005915","short_code":"ob"}},{"ob_id":42675,"function":"documentation","linkage":"https://doi.org/10.1002/qj.2566","name":"Vosper, S.B. (2015), Mountain waves and wakes generated by South Georgia: implications for drag parametrization. Q.J.R. Meteorol. Soc., 141: 2813-2827. https://doi.org/10.1002/qj.2566","relatedTo":{"ob_id":32522,"uuid":"a945f294d03143d8b5197e65f8005915","short_code":"ob"}},{"ob_id":42676,"function":"documentation","linkage":"https://doi.org/10.1002/qj.2566","name":"Vosper, S.B. (2015), Mountain waves and wakes generated by South Georgia: implications for drag parametrization. Q.J.R. Meteorol. Soc., 141: 2813-2827. https://doi.org/10.1002/qj.2566","relatedTo":{"ob_id":32585,"uuid":"91ff8a893f4647ab9224e67666d0a345","short_code":"comp"}},{"ob_id":42677,"function":"documentation","linkage":"https://doi.org/10.1002/qj.2566","name":"Vosper, S.B. (2015), Mountain waves and wakes generated by South Georgia: implications for drag parametrization. Q.J.R. Meteorol. Soc., 141: 2813-2827. https://doi.org/10.1002/qj.2566","relatedTo":{"ob_id":32586,"uuid":"7e791b00ce5e46129f055851325a741c","short_code":"comp"}},{"ob_id":42678,"function":"documentation","linkage":"https://doi.org/10.1002/qj.2566","name":"Vosper, S.B. (2015), Mountain waves and wakes generated by South Georgia: implications for drag parametrization. Q.J.R. Meteorol. Soc., 141: 2813-2827. https://doi.org/10.1002/qj.2566","relatedTo":{"ob_id":32587,"uuid":"da680a867c1e4ddba41bd06f8a4784b0","short_code":"comp"}},{"ob_id":42679,"function":"documentation","linkage":"https://doi.org/10.1002/qj.2566","name":"Vosper, S.B. (2015), Mountain waves and wakes generated by South Georgia: implications for drag parametrization. Q.J.R. Meteorol. Soc., 141: 2813-2827. https://doi.org/10.1002/qj.2566","relatedTo":{"ob_id":32588,"uuid":"1de8ce38a5e142669f7c8a2b6a188faf","short_code":"comp"}},{"ob_id":42680,"function":"documentation","linkage":"https://doi.org/10.1002/qj.2566","name":"Vosper, S.B. (2015), Mountain waves and wakes generated by South Georgia: implications for drag parametrization. Q.J.R. Meteorol. Soc., 141: 2813-2827. https://doi.org/10.1002/qj.2566","relatedTo":{"ob_id":32589,"uuid":"def5b5d175a643abb8f9dbe624a752f5","short_code":"comp"}},{"ob_id":42681,"function":"documentation","linkage":"https://doi.org/10.1002/qj.2566","name":"Vosper, S.B. (2015), Mountain waves and wakes generated by South Georgia: implications for drag parametrization. Q.J.R. Meteorol. Soc., 141: 2813-2827. https://doi.org/10.1002/qj.2566","relatedTo":{"ob_id":32590,"uuid":"948d8cd87c0543818e178437b39ac2f8","short_code":"comp"}},{"ob_id":42682,"function":"documentation","linkage":"https://link.springer.com/article/10.1007/s00442-005-0100-x","name":"Chave et al., 2005. Tree allometry and improved estimation of carbon stocks and balance in tropical forests","relatedTo":{"ob_id":32592,"uuid":"653fdd814dba4103a301221955781e35","short_code":"ob"}},{"ob_id":42683,"function":"documentation","linkage":"https://www.nature.com/articles/nature20584","name":"Pekel et al., 2016. High-resolution mapping of global surface water and its long-term changes. Nature, 540, 418-422","relatedTo":{"ob_id":32592,"uuid":"653fdd814dba4103a301221955781e35","short_code":"ob"}},{"ob_id":42684,"function":"documentation","linkage":"https://www.sciencedirect.com/science/article/abs/pii/S0034425711001337?via%3Dihub","name":"Mitchard et al., 2011. Measuring biomass changes due to woody encroachment and deforestation/degradation in a forest–savanna boundary region of central Africa using multi-temporal L-band radar backscatter. Remote Sensing of Environment, 115, 2861-287","relatedTo":{"ob_id":32592,"uuid":"653fdd814dba4103a301221955781e35","short_code":"ob"}},{"ob_id":42685,"function":"documentation","linkage":"https://royalsocietypublishing.org/doi/10.1098/rstb.2003.1425","name":"Chave et al., 2004. Error propagation and scaling for tropical forest biomass estimates. Philosophical Transactions of the Royal Society of London. Series B: Biological Sciences, 359, 409-420,","relatedTo":{"ob_id":32592,"uuid":"653fdd814dba4103a301221955781e35","short_code":"ob"}},{"ob_id":42686,"function":"documentation","linkage":"https://bg.copernicus.org/articles/11/6827/2014/","name":"Réjou-Méchain et al., 2014. Local spatial structure of forest biomass and its consequences for remote sensing of carbon stocks. Biogeosciences, 11","relatedTo":{"ob_id":32592,"uuid":"653fdd814dba4103a301221955781e35","short_code":"ob"}},{"ob_id":42687,"function":"documentation","linkage":"https://www.pnas.org/content/108/24/9899","name":"Saatchi et al., 2011. Benchmark map of forest carbon stocks in tropical regions across three continents. Proceedings of the National Academy of Sciences, 108, 9899-9904","relatedTo":{"ob_id":32592,"uuid":"653fdd814dba4103a301221955781e35","short_code":"ob"}},{"ob_id":42700,"function":"documentation","linkage":"https://climate.esa.int/documents/1243/ST-UL-ESA-AISCCI-PUG-0001.pdf","name":"Product User Guide","relatedTo":{"ob_id":32600,"uuid":"7b3bddd5af4945c2ac508a6d25537f0a","short_code":"ob"}},{"ob_id":42701,"function":"documentation","linkage":"https://climate.esa.int","name":"ESA Climate Change Initiative website","relatedTo":{"ob_id":32600,"uuid":"7b3bddd5af4945c2ac508a6d25537f0a","short_code":"ob"}},{"ob_id":42702,"function":"documentation","linkage":"https://climate.esa.int/projects/ice-sheets-antarctic","name":"ESA Antarctic Ice Sheets project website","relatedTo":{"ob_id":32600,"uuid":"7b3bddd5af4945c2ac508a6d25537f0a","short_code":"ob"}},{"ob_id":42703,"function":"documentation","linkage":"https://climate.esa.int","name":"ESA Climate Change Initiative website","relatedTo":{"ob_id":32601,"uuid":"00fe090efc58446e8980992a617f632f","short_code":"ob"}},{"ob_id":42704,"function":"documentation","linkage":"https://climate.esa.int/projects/ice-sheets-antarctic","name":"Antarctic Ice Sheets CCI project webpages","relatedTo":{"ob_id":32601,"uuid":"00fe090efc58446e8980992a617f632f","short_code":"ob"}},{"ob_id":42705,"function":"documentation","linkage":"https://climate.esa.int","name":"ESA Climate Change Initiative website","relatedTo":{"ob_id":32602,"uuid":"e1dfd0ee655944b8a82ce0479c518747","short_code":"ob"}},{"ob_id":42706,"function":"documentation","linkage":"https://climate.esa.int/projects/ice-sheets/antarctic/","name":"ESA Antarctic Ice Sheets CCI project webpage","relatedTo":{"ob_id":32602,"uuid":"e1dfd0ee655944b8a82ce0479c518747","short_code":"ob"}},{"ob_id":42707,"function":"documentation","linkage":"https://climate.esa.int/projects/ice-sheets-antarctic/key-documents/","name":"ESA Antarctic Ice Sheet CCI key documents","relatedTo":{"ob_id":32602,"uuid":"e1dfd0ee655944b8a82ce0479c518747","short_code":"ob"}},{"ob_id":42708,"function":"documentation","linkage":"http://data.ceda.ac.uk/badc/ukmo-nimrod/doc/radar_products_description.pdf","name":"Product description table","relatedTo":{"ob_id":32605,"uuid":"5b22789f362c43f3b3d1c65bc30c30ee","short_code":"ob"}},{"ob_id":42709,"function":"documentation","linkage":"http://data.ceda.ac.uk/badc/ukmo-nimrod/doc/Nimrod_File_Format_v1.7.pdf","name":"NIMROD format document","relatedTo":{"ob_id":32605,"uuid":"5b22789f362c43f3b3d1c65bc30c30ee","short_code":"ob"}},{"ob_id":42710,"function":"documentation","linkage":"https://zenodo.org/record/7356941","name":"Dual Polar file format  header description","relatedTo":{"ob_id":32605,"uuid":"5b22789f362c43f3b3d1c65bc30c30ee","short_code":"ob"}},{"ob_id":42711,"function":"documentation","linkage":"https://artefacts.ceda.ac.uk/badc_datadocs/nimrod/factsheet15.pdf","name":"Met Office Weather Radar Factsheet","relatedTo":{"ob_id":32605,"uuid":"5b22789f362c43f3b3d1c65bc30c30ee","short_code":"ob"}},{"ob_id":42712,"function":"documentation","linkage":"https://climate.esa.int/en/projects/ghgs/","name":"Greenhouse Gases CCI project","relatedTo":{"ob_id":32607,"uuid":"9252ff9ddeb249a2bd8433e9ae9dfe13","short_code":"ob"}},{"ob_id":42713,"function":"documentation","linkage":"http://www.iup.uni-bremen.de/carbon_ghg/docs/GHG-CCIplus/CRDP6/PUGv2.1_GHG-CCI_CO2_Tan_OCFP_v1.pdf","name":"Product User Guide","relatedTo":{"ob_id":32607,"uuid":"9252ff9ddeb249a2bd8433e9ae9dfe13","short_code":"ob"}},{"ob_id":42714,"function":"documentation","linkage":"http://www.iup.uni-bremen.de/carbon_ghg/docs/GHG-CCIplus/CRDP6/ATBDv1_TanSat_CCIp_UoL.pdf","name":"AlgorithmTheoretical Basis Document for the CO2_TAN_OCFP dataset, v1","relatedTo":{"ob_id":32607,"uuid":"9252ff9ddeb249a2bd8433e9ae9dfe13","short_code":"ob"}},{"ob_id":42715,"function":"documentation","linkage":"http://www.iup.uni-bremen.de/carbon_ghg/docs/GHG-CCIplus/CRDP6/ATBDv1_TanSat_CCIp_UoL.pdf","name":"End-to-end ECV Uncertainty Budget:University of Leicester full-physics XCO2retrieval algorithm for CO2_TAN_OCFP v1","relatedTo":{"ob_id":32607,"uuid":"9252ff9ddeb249a2bd8433e9ae9dfe13","short_code":"ob"}},{"ob_id":42717,"function":"documentation","linkage":"https://climate.esa.int","name":"ESA Climate Change Initiative Website","relatedTo":{"ob_id":32607,"uuid":"9252ff9ddeb249a2bd8433e9ae9dfe13","short_code":"ob"}},{"ob_id":42718,"function":"dataService","linkage":"ftp://anon-ftp.ceda.ac.uk/neodc/esacci/ghg/data/cci_plus/CO2_OC2_FOCA/v9.0/","name":"Anonymous ftp site for CCI","relatedTo":{"ob_id":32609,"uuid":"b0de069568a141b0b074ca0f7cee004b","short_code":"ob"}},{"ob_id":42719,"function":"documentation","linkage":"http://www.iup.uni-bremen.de/carbon_ghg/docs/GHG-CCIplus/CRDP6/PUGv3_GHG-CCI_CO2_OC2_FOCA_v09_20210126.pdf","name":"Product user guide","relatedTo":{"ob_id":32609,"uuid":"b0de069568a141b0b074ca0f7cee004b","short_code":"ob"}},{"ob_id":42720,"function":"documentation","linkage":"https://climate.esa.int/","name":"ESA Climate Change Initiative website","relatedTo":{"ob_id":32609,"uuid":"b0de069568a141b0b074ca0f7cee004b","short_code":"ob"}},{"ob_id":42721,"function":"documentation","linkage":"https://www.mdpi.com/2072-4292/9/11/1159","name":"M.Reuter, M.Buchwitz, O.Schneising, S.Noel, V.Rozanov, H.Bovensmann and J.P.Burrows: A Fast Atmospheric Trace Gas Retrieval for Hyperspectral Instruments Approximating Multiple Scattering - Part 1: Radiative Transfer and a Potential OCO-2 XCO2 Retrieval Setup Remote Sensing, 9(11), 1159; doi:10.3390/rs9111159, 2017","relatedTo":{"ob_id":32609,"uuid":"b0de069568a141b0b074ca0f7cee004b","short_code":"ob"}},{"ob_id":42722,"function":"documentation","linkage":"http://www.mdpi.com/2072-4292/9/11/1102","name":"Reuter, M., M. Buchwitz, O. Schneising, S. Noel, H. Bovensmann, J. P.  Burrows, A Fast Atmospheric Trace Gas Retrieval for Hyperspectral Instruments Approximating Multiple Scattering - Part 2: Application to XCO2 Retrievals from OCO-2, Remote Sens., 9, 1102, doi:10.3390/rs9111102, 2017.","relatedTo":{"ob_id":32609,"uuid":"b0de069568a141b0b074ca0f7cee004b","short_code":"ob"}},{"ob_id":42723,"function":"documentation","linkage":"https://climate.esa.int/projects/ghgs/","name":"Greenhouse Gases CCI project","relatedTo":{"ob_id":32609,"uuid":"b0de069568a141b0b074ca0f7cee004b","short_code":"ob"}},{"ob_id":42724,"function":"documentation","linkage":"http://www.iup.uni-bremen.de/carbon_ghg/docs/GHG-CCIplus/CRDP6/ATBD_CO2_OC2_FOCA_v2.pdf","name":"CRDP6: Algorithm Theoretical Basis Document (ATBD) - CO2_OC2_FOCA","relatedTo":{"ob_id":32609,"uuid":"b0de069568a141b0b074ca0f7cee004b","short_code":"ob"}},{"ob_id":42725,"function":"documentation","linkage":"https://www.iup.uni-bremen.de/carbon_ghg/docs/GHG-CCIplus/PSD/PSDv3_GHG-CCI_final.pdf","name":"GHG-CCI project team: Product Specification Document Version 3 (PSDv3) for the Essential Climate Variable (ECV) Greenhouse Gases (GHG) - Description of Common Parameters for core (ECA) products ESA Climate Change Initiative (CCI), 2014","relatedTo":{"ob_id":32609,"uuid":"b0de069568a141b0b074ca0f7cee004b","short_code":"ob"}},{"ob_id":42726,"function":"documentation","linkage":"https://www.iup.uni-bremen.de/carbon_ghg/docs/GHG-CCIplus/CRDP6/E3UBv2_GHG-CCI_CO2_OC2_FOCA_v09_20210126.pdf","name":"CRDP6: End-to-End ECV Uncertainty Budget (E3UB) – CO2_OC2_FOCA","relatedTo":{"ob_id":32609,"uuid":"b0de069568a141b0b074ca0f7cee004b","short_code":"ob"}},{"ob_id":42727,"function":"documentation","linkage":"http://www.tropomi.eu/data-products/carbon-monoxide","name":"Carbon Monoxide TROPOMI webpage","relatedTo":{"ob_id":26461,"uuid":"84ff4498eab64f6885a0e2391b993064","short_code":"ob"}},{"ob_id":42732,"function":"documentation","linkage":"https://climate.esa.int/documents/1192/CCI_PERMA_PUG_v3.0.pdf","name":"Product User Guide","relatedTo":{"ob_id":32612,"uuid":"67a3f8c8dc914ef99f7f08eb0d997e23","short_code":"ob"}}]}