Past decade above-ground biomass change comparisons from four multi-temporal global maps
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S. Bruin | M. Herold | P. Ciais | T. Pugh | P. Rodríguez-Veiga | M. Schelhaas | J. Wigneron | N. Harris | L. Hein | Hui Yang | M. Santoro | D. Schepaschenko | K. Stereńczak | O. Brovkina | J. Novotný | J. Fridman | P. Dimitrov | A. Gikov | Adriane Esquivel Muelbert | Arnan B. Araza | Mariano García | Fardin Moradi | N. Málaga | Milen Chanev | D. Gibbs | Leen Govaere | Lachezar Hristov Filchev | Karimon Nesha | Zlatomir Dimitrov | Hugh C. A. Brown | Jonas Fridman | A. Araza
[1] M. Herold,et al. Global estimation of above-ground biomass from spaceborne C-band scatterometer observations aided by LiDAR metrics of vegetation structure , 2022, Remote Sensing of Environment.
[2] M. Herold,et al. Exploring characteristics of national forest inventories for integration with global space-based forest biomass data. , 2022, The Science of the total environment.
[3] S. Bruin,et al. Plot-To-Map: an Open-Source R Workflow For Above-Ground Biomass Independent Validation , 2022, IGARSS 2022 - 2022 IEEE International Geoscience and Remote Sensing Symposium.
[4] F. Maignan,et al. Climatic and biotic factors influencing regional declines and recovery of tropical forest biomass from the 2015/16 El Niño , 2022, Proceedings of the National Academy of Sciences of the United States of America.
[5] F. Kraxner,et al. Global forest management data for 2015 at a 100 m resolution , 2022, Scientific data.
[6] M. Herold,et al. A comprehensive framework for assessing the accuracy and uncertainty of global above-ground biomass maps , 2022, Remote Sensing of Environment.
[7] M. Herold,et al. Rapid remote monitoring reveals spatial and temporal hotspots of carbon loss in Africa’s rainforests , 2022, Communications Earth & Environment.
[8] M. Santoro,et al. Dynamics of the Swedish forest carbon pool between 2010 and 2015 estimated from satellite L-band SAR observations , 2022, Remote Sensing of Environment.
[9] P. Ciais,et al. Doubling of annual forest carbon loss over the tropics during the early twenty-first century , 2022, Nature Sustainability.
[10] M. Herold,et al. The global forest above-ground biomass pool for 2010 estimated from high-resolution satellite observations , 2021, Earth System Science Data.
[11] M. Keller,et al. Changes in global terrestrial live biomass over the 21st century , 2021, Science Advances.
[12] F. Tubiello,et al. Carbon emissions and removals from forests: new estimates, 1990–2020 , 2021 .
[13] G. Lannoy,et al. SMOS-IC data record of soil moisture and L-VOD: Historical development, applications and perspectives , 2021, Remote Sensing of Environment.
[14] M. Herold,et al. Global maps of twenty-first century forest carbon fluxes , 2021, Nature Climate Change.
[15] Yuzhen Zhang,et al. Fusion of Multiple Gridded Biomass Datasets for Generating a Global Forest Aboveground Biomass Map , 2020, Remote. Sens..
[16] L. Hein,et al. Ecosystem accounting in the Netherlands , 2020 .
[17] Christophe Sannier,et al. Remote Sensing Support for the Gain-Loss Approach for Greenhouse Gas Inventories , 2020, Remote. Sens..
[18] Mariela Soto-Berelov,et al. Monitoring aboveground forest biomass dynamics over three decades using Landsat time-series and single-date inventory data , 2020, Int. J. Appl. Earth Obs. Geoinformation.
[19] Klaus Scipal,et al. A Joint ESA-NASA Multi-mission Algorithm and Analysis Platform (MAAP) for Biomass, NISAR, and GEDI , 2019, Surveys in Geophysics.
[20] Klaus Scipal,et al. The European Space Agency BIOMASS mission: Measuring forest above-ground biomass from space , 2019, Remote Sensing of Environment.
[21] Sassan Saatchi,et al. Upscaling Forest Biomass from Field to Satellite Measurements: Sources of Errors and Ways to Reduce Them , 2019, Surveys in Geophysics.
[22] Klaus Scipal,et al. Ground Data are Essential for Biomass Remote Sensing Missions , 2019, Surveys in Geophysics.
[23] Erik Næsset,et al. The Role and Need for Space-Based Forest Biomass-Related Measurements in Environmental Management and Policy , 2019, Surveys in Geophysics.
[24] Alan Grainger,et al. The extent of forest in dryland biomes , 2017, Science.
[25] P. Rodríguez-Veiga,et al. Quantifying Forest Biomass Carbon Stocks From Space , 2017, Current Forestry Reports.
[26] O. Phillips,et al. Carbon uptake by mature Amazon forests has mitigated Amazon nations’ carbon emissions , 2017, Carbon Balance and Management.
[27] M. Keller,et al. Aboveground biomass variability across intact and degraded forests in the Brazilian Amazon , 2016 .
[28] Hubert Hasenauer,et al. Optimal resolution for linking remotely sensed and forest inventory data in Europe , 2016 .
[29] Terje Gobakken,et al. The effects of field plot size on model-assisted estimation of aboveground biomass change using multitemporal interferometric SAR and airborne laser scanning data , 2015 .
[30] C. Justice,et al. High-Resolution Global Maps of 21st-Century Forest Cover Change , 2013, Science.
[31] I. Woodhouse,et al. Quantifying small‐scale deforestation and forest degradation in African woodlands using radar imagery , 2012 .
[32] Brian R. Johnson,et al. National ecological observatory network (NEON) airborne remote measurements of vegetation canopy biochemistry and structure , 2010, 2010 IEEE International Geoscience and Remote Sensing Symposium.