Growth and establishment of monodominant stands affected by ENSO and flooding in the Pantanal
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[1] Solange Kimie Ikeda-Castrillon,et al. Macrohabitats da Estação Ecológica de Taiamã, no contexto da Área Úmida Pantanal mato-grossense, Brasil , 2020, Boletim do Museu Paraense Emílio Goeldi - Ciências Naturais.
[2] Diego F. Correa,et al. Rarity of monodominance in hyperdiverse Amazonian forests , 2019, Scientific Reports.
[3] J. Schöngart,et al. Impact of climatic and hydrological disturbances on blackwater floodplain forests in Central Amazonia , 2019, Biotropica.
[4] J. Schöngart,et al. Growth rings of Brazil nut trees (Bertholletia excelsa) as a living record of historical human disturbance in Central Amazonia , 2019, PloS one.
[5] J. Schöngart,et al. Tree rings and rainfall in the equatorial Amazon , 2019, Climate Dynamics.
[6] F. Wittmann,et al. Macrohabitat studies in large Brazilian floodplains to support sustainable development in the face of climate change , 2018, Ecohydrology & Hydrobiology.
[7] W. Junk,et al. Dendrochronological records of a pioneer tree species containing ENSO signal in the Pantanal, Brazil , 2018, Brazilian Journal of Botany.
[8] J. Nogueira,et al. Stem water storage dynamics of Vochysia divergens in a seasonally flooded environment , 2017 .
[9] J. Oldeland,et al. Inundation and Fire Shape the Structure of Riparian Forests in the Pantanal, Brazil , 2016, PloS one.
[10] G. Ceccantini,et al. Climate/growth relations and teleconnections for a Hymenaea courbaril (Leguminosae) population inhabiting the dry forest on karst , 2016, Trees.
[11] A. Mariaux,et al. Nature and periodicity of growth rings in African timber: can they be used to determine the age of trees? , 2015 .
[12] M. Biudes,et al. Growth rhythm of Vochysia divergens Pohl (Vochysiaceae) in the Northern Pantanal , 2015 .
[13] Y. Schaeffer-Novelli,et al. Brazilian wetlands: their definition, delineation, and classification for research, sustainable management, and protection , 2014 .
[14] R Core Team,et al. R: A language and environment for statistical computing. , 2014 .
[15] J. Stape,et al. Köppen's climate classification map for Brazil , 2013 .
[16] G. Ceccantini,et al. A multi-proxy dendroecological analysis of two tropical species (Hymenaea spp., Leguminosae) growing in a vegetation mosaic , 2013, Trees.
[17] J. Schöngart,et al. Age-related and stand-wise estimates of carbon stocks and sequestration in the aboveground coarse wood biomass of wetland forests in the northern Pantanal, Brazil , 2011 .
[18] A. Pott,et al. Plant diversity of the Pantanal wetland. , 2011, Brazilian journal of biology = Revista brasleira de biologia.
[19] H. Krambeck,et al. Management criteria for Ficus insipida Willd. (Moraceae) in Amazonian white-water floodplain forests defined by tree-ring analysis , 2007, Annals of Forest Science.
[20] E. Lebrija‐Trejos,et al. Climate‐growth analysis for a Mexican dry forest tree shows strong impact of sea surface temperatures and predicts future growth declines , 2010 .
[21] M. Raposo,et al. Exploitation of Erythrina fusca (Leguminosae, Fabaceae) flowers by birds during the dry season in Pantanal of Mato Grosso, Brazil , 2010 .
[22] F. Wittmann,et al. Manual of trees from Central Amazonian várzea floodplains : taxonomy, ecology and use , 2010 .
[23] F. Bongers,et al. The Potential of Tree Rings for the Study of Forest Succession in Southern Mexico , 2009 .
[24] M. Piedade,et al. Wood growth of Tabebuia barbata (E. Mey.) Sandwith (Bignoniaceae) and Vatairea guianensis Aubl. (Fabaceae) in Central Amazonian black-water (igapó) and white-water (várzea) floodplain forests , 2009, Trees.
[25] J. Schöngart. Growth-Oriented Logging (GOL): A new concept towards sustainable forest management in Central Amazonian várzea floodplains , 2008 .
[26] P. Zuidema,et al. Lifetime growth patterns and ages of Bolivian rain forest trees obtained by tree ring analysis , 2006 .
[27] L. H. C. Anjos,et al. Sistema Brasileiro de Classificação de Solos. , 2006 .
[28] F. Wittmann,et al. Wood growth patterns of Macrolobium acaciifolium (Benth.) Benth. (Fabaceae) in Amazonian black-water and white-water floodplain forests , 2005, Oecologia.
[29] Flávio J. M. Santos,et al. Structure, distribution of species and inundation in a riparian forest of Rio Paraguai, Pantanal, Brazil , 2005 .
[30] Peter Gasson,et al. IAWA list of microscopic features for softwood identification , 2004 .
[31] W. Junk,et al. Year-to-year changes in water level drive the invasion of Vochysia divergens in Pantanal grasslands , 2004 .
[32] W. Junk,et al. Teleconnection between tree growth in the Amazonian floodplains and the El Niño–Southern Oscillation effect , 2004 .
[33] M. Swaine,et al. On the definition of ecological species groups in tropical rain forests , 1988, Vegetatio.
[34] W. Junk,et al. Tree ring analysis reveals age structure, dynamics and wood production of a natural forest stand in Cameroon , 2003 .
[35] Viviana Horna,et al. Phenology and stem-growth periodicity of tree species in Amazonian floodplain forests , 2002, Journal of Tropical Ecology.
[36] S. H. Biaou,et al. The use of diameter distributions in sustained-use management of remnant forests in Benin: case of Bassila forest reserve in North Benin , 2002 .
[37] P. Coley,et al. Causes and Consequences of Monodominance in Tropical Lowland Forests , 2001, The American Naturalist.
[38] J. F. Valentim,et al. Desempenho de doze espécies arbóreas nativas e introduzidas com potencial de uso múltiplo no estado do Acre, Brasil , 2000 .
[39] David W. Stahle,et al. Management implications of annual growth rings in Pterocarpus angolensis from Zimbabwe , 1999 .
[40] D. W. Stahlea,et al. Management implications of annual growth rings in Pterocarpus angolensis from Zimbabwe , 1999 .
[41] Hildeberto Caldas de Sousa,et al. Métodos de coloração de Roeser (1972): modificado - e Kropp (1972) visando a substituição do azul de astra por azul de alcião 8GS ou 8GX , 1996 .
[42] M. Stokes,et al. An Introduction to Tree-Ring Dating , 1996 .
[43] M. Worbes. How to Measure Growth Dynamics in Tropical Trees a Review , 1995 .
[44] Kew Royal Botanic Gardens,et al. The Herbarium Handbook , 1992 .
[45] Harri Lorenzi,et al. Árvores brasileiras : manual de identificac̦ão e cultivo de plantas arbóreas nativas do Brasil , 1992 .
[46] G. Berlyn,et al. Botanical Microtechnique and Cytochemistry , 1991 .
[47] E. Cook,et al. Methods of Dendrochronology - Applications in the Environmental Sciences , 1991 .
[48] Edward R. Cook,et al. Methods of Dendrochronology , 1990 .
[49] T. Hart. Monospecific dominance in tropical rain forests. , 1990, Trends in ecology & evolution.
[50] M. Lowman,et al. Low-Diversity Tropical Rain Forests: Some Possible Mechanisms for Their Existence , 1989, The American Naturalist.
[51] P. G. Murphy,et al. Monodominant and Species-Rich Forests of the Humid Tropics: Causes for Their Co-Occurrence , 1989, The American Naturalist.
[52] M. Worbes. Growth Rings, Increment and Age of Trees in Inundation Forests, Savannas and a Mountain Forest in the Neotropics , 1989 .
[53] F. Schweingruber. Tree Rings: Basics and Applications of Dendrochronology , 1988 .
[54] F. Schweingruber. The History of Dendrochronology , 1988 .
[55] D. Daly,et al. Quantitative ecological inventory of terra firme and várzea tropical forest on the Rio Xingu, Brazilian Amazon , 1986 .
[56] K. A. Gomez,et al. Statistical Procedures for Agricultural Research. , 1984 .
[57] H. Fritts,et al. Tree Rings and Climate. , 1978 .
[58] M. Baillie,et al. A SIMPLE CROSSDATING PROGRAM FOR TREE -RING RESEARCH , 1973 .
[59] A. Mariaux. Les cernes dans les bois tropicaux africains : nature et périodicité (suite et fin) , 1967 .
[60] A. Mariaux. Les cernes dans les bois tropicaux africains : nature et périodicité. Peuvent-ils révéler l'âge des arbres? , 1967 .
[61] W. T.,et al. Plant Ecology , 1956, Nature.
[62] C. Coster. Zur Anatomie und Physiologie der Zuwachszonen- und Jahresringbildung in den Tropen , 1927 .