يعرض 1 - 20 نتائج من 161 نتيجة بحث عن '"Análisis de crecimiento"', وقت الاستعلام: 1.15s تنقيح النتائج
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    المصدر: Colombia Forestal; Vol. 25 No. 2 (2022): July-december; 45-56 ; Colombia forestal; Vol. 25 Núm. 2 (2022): Julio-diciembre; 45-56 ; 2256-201X ; 0120-0739

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    Relation: https://revistas.udistrital.edu.co/index.php/colfor/article/view/18721/18297; https://revistas.udistrital.edu.co/index.php/colfor/article/view/18721/18364; Arredondo, H. A. K., & Castañeda-Sánchez, D. (2020). El modelamiento en la floricultura. Revista de La Facultad de Ciencias, 9(2), 80-92. https://doi.org/10.15446/rev.fac.cienc.v9n2.86791 Barbosa, R. M. T., de Almeida, A. A. F., Mielke, M. S., Loguercio, L. L., Mangabeira, P. A. O., & Gomes, F. P. (2007). A physiological analysis of Genipa americana L.: A potential phytoremediator tree for chromium polluted watersheds. Environmental and Experimental Botany, 61(3), 264-271. https://doi.org/10.1016/J.ENVEXPBOT.2007.06.001 Brauch, J. E., Zapata-Porras, S. P., Buchweitz, M., Aschoff, J. K., & Carle, R. (2016). Jagua blue derived from Genipa americana L. fruit: A natural alternative to commonly used blue food colorants? Food Research International, 89, 391-398. https://doi.org/10.1016/J.FOODRES.2016.08.029 Cardoso, M. N., Nascimento, A. L. S., De Oliveira, L. A. R., De Assunção, D. A., Machado, C. A., De Oliveira, A. C. A., De Jesus, A. S., Lédo, A. S., Archiminio, R. S., Rabbani, A. R. C., & Silva, A. V. C. (2019). Genetic diversity in native Genipa americana (Rubiaceae) populations in Sergipe, Brazil. Genetics and Molecular Research, 18(1), 18119. https://doi.org/10.4238/gmr18119 de Mendiburu, F. (2021). Agricolae: Statistical Procedures for Agricultural Research. R package (1.3-5). Universidad La Molina. Díaz, V. M. A., Domínguez, C. P. A., & Rodríguez, O. G. (2017). Predicción del crecimiento y producción de Pinus cooperi en el ejido El Brillante, Pueblo Nuevo, Durango. Foresta Veracruzana, 19(2), 33-40. https://www.redalyc.org/journal/497/49753656003/ Francis, J. K. (2000). Genipa americana L. jagua, Genipa. In J. K. Francis & C. A. Lowe (Eds.), Bioecología de árboles nativos y exóticos de Puerto Rico y las Indias Occidentales (pp. 231-235). U.S. Department of Agriculture, Forest Service, International Institute of Tropical Forestry. Gonçalves, J. F. de C., Melo, E. G. de F., Ferreira, M. J., Silva, C. E. M. da, & Gomes, I. B. (2013). Crescimento, partição de biomassa e fotossíntese em plantas jovens de Genipa spruceana submetidas ao alagamento. CERNE, 19(2), 193-200. https://doi.org/10.1590/S0104-77602013000200003 Hastie, T., Tibshirani, R., & Friedman, J. (2009). The Elements of Statistical Learning. Springer New York. https://doi.org/10.1007/978-0-387-84858-7 Instituto Geográfico Agustín Codazzi (IGAC) (2007). Estudio general de suelos y zonificación de tierras: departamento de Antioquia. IGAC. Jaramillo, D. (1989). Estudio general de suelos, erosión y uso potencial agropecuario para los proyectos hidroeléctricos Porce II y Porce III. Empresas Públicas de Medellín, Unidad de Planeación, Estudios de Impacto Ambiental. Jesus, A. S. De, Filho, J. G. D. S., Teodoro, A. V., Cardoso, M. N., Nascimento, A. L. S., Ledo, A. D. S., & Silva, A. V. C. Da. (2019). Conservation, Utilization, Genetic and Chemodiversity of Germplasm of Genipap (Genipa americana L.) in Brazil. Current Trends in Biomedical Engineering & Biosciences, 18(4), 555995. https://doi.org/10.19080/ctbeb.2019.18.555995 Karadavut, U., Kayi, S. A., Palta, Ç., & Okur, O. (2008). A Growth Curve Application to Compare Plant Heights and Dry Weights of Some Wheat Varieties. Journal of Agriculture and Environmental Sciences, 3(6), 888-892. https://www.idosi.org/aejaes/jaes3(6)/15.pdf Karadavut, U., Palta, Ç., Kökten, K., & Bakoğlu, A. (2010). Comparative study on some non-linear growth models for describing leaf growth of maize. International Journal of Agriculture and Biology, 12, 227-230. http://www.fspublishers.org/published_papers/64545_.pdf Mielke, M. S., Mielke, M. S., Almeida, A.-A. F. de, Gomes, F. P., Aguilar, M. A. G., & Mangabeira, P. A. O. (2003). Leaf gas exchange, chlorophyll fluorescence and growth responses of Genipa americana seedlings to soil flooding. Environmental and Experimental Botany, 50(3), 221-231. https://doi.org/10.1016/S0098-8472(03)00036-4 Motulsky, H., & Christopoulos, A. (2003). Fitting Models to Biological Data Using Linear and Nonlinear Regression. Fitting curves with GraphPad Prism. GraphPad Prism Software Inc. Moura, S. S. M., Sampaio de Sousa, S. R., & Mendes Conde Júnior, A. (2016). Genipa americana: prospecção tecnológica. Jornal Interdisciplinar de Biociências, 1(2), 5. https://revistas.ufpi.br/index.php/jibi/article/view/5174 Náthia-Neves, G., & Meireles, M. A. A. (2018). Genipap: A New Perspective on Natural Colorants for the Food Industry. Food and Public Health, 8, 21-33. https://doi.org/10.5923/j.fph.20180801.04 Paine, C. E. T., Marthews, T. R., Vogt, D. R., Purves, D., Rees, M., Hector, A., & Turnbull, L. A. (2012). How to fit nonlinear plant growth models and calculate growth rates: an update for ecologists. Methods in Ecology and Evolution, 3(2), 245-256. https://doi.org/https://doi.org/10.1111/j.2041-210X.2011.00155.x Paiva, N. de J., Braga, S. S. R., Santana, A. da S. J., & Canto, L. do J. (2019). Crescimento e sobrevivência de Genipa americana L. no município de Macaíba (Rio Grande do Norte – Brasil). Revista Brasileira de Meio Ambiente, 7(3), 088-093. https://doi.org/10.5281/zenodo.3595073 Petit, B., & Montagnini, F. (2004). Growth equations and rotation ages of ten native tree species in mixed and pure plantations in the humid neotropics. Forest Ecology and Management, 199(23), 243-257. https://doi.org/10.1016/J.FORECO.2004.05.039 Pinto-Ruiz, R., Urbina-Cruz, F. M., & Jiménez-Trujillo, T. J. A. (2018). Genipa americana L. In G. J. M. Palma & I. C. González-Rebeles (Eds.). Recursos arbóreos y arbustivos tropicales para una ganadería bovina sustentable (pp. 63-65). Universidad de Colima http://ww.ucol.mx/content/publicacionesenlinea/adjuntos/Recursos-arboreos-y-arbustivos-tropicales_462.pdf Pinto, R. R., Urbina, C. F. M., & Jiménes, T. J. A. (2018). Genipa americana L. In G. J. M. Palma & I. C. González-Rebeles (Eds.). Recursos arbóreos y arbustivos tropicales para una ganadería bovina sustentable (pp. 63–65). Universidad de Colima. Colima, México. http://ww.ucol.mx/content/publicacionesenlinea/adjuntos/Recursos-arboreos-y-arbustivos-tropicales_462.pdf; Santiago, E. F., & Paoli, A. A. S. (2007). Respostas morfológicas em Guibourtia hymenifolia (Moric.) J. Leonard (Fabaceae) e Genipa americana L. (Rubiaceae), submetidas ao estresse por deficiência nutricional e alagamento do substrato. Revista Brasileira de Botânica, 30(1), 131-140. https://doi.org/10.1590/S0100-84042007000100013 Santiago, R., Silva, N. H., Silva, F. P., Martins, M. C. B., Vasconcelos, T. L. de, Yano-Melo, A. M., Pereira, E. C., Santiago, R., Silva, N. H., Silva, F. P., Martins, M. C. B., Vasconcelos, T. L. de, Yano-Melo, A. M., & Pereira, E. C. (2018). Interactions of the lichen Cladonia salzmannii Nyl. with soil, microbiota, mycorrhizae and Genipa americana. Journal of Soil Science and Plant Nutrition, 18(3), 833-850. http://dx.doi.org/10.4067/S0718-95162018005002402 Santos, A. R. F. dos, Silva-Mann, R., & Ferreira, R. A. (2011). Restrição hídrica em sementes de Jenipapo (Genipa americana L.). Revista Árvore, 35(2), 213-220. https://doi.org/10.1590/S0100-67622011000200006 Silva, A. V. C. da, Soares, A. N. R., Cardoso, M. N., Melo, M. F. de V., Muniz, E. N., & Ledo, A. D. S. (2018). Evaluation of Substrates for Jenipapo (Genipa americana L.) Seedlings Production. Journal of Agricultural Science, 10(2), 352. https://doi.org/10.5539/jas.v10n2p352 Yang, R. C., Kozak, A., & Smith, J. H. G. (1978). The potential of Weibull-type functions as flexible growth curves. Canadian Journal of Forest Research, 8(4), 424-431. https://doi.org/10.1139/x78-062; https://revistas.udistrital.edu.co/index.php/colfor/article/view/18721

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    المصدر: Acta Biológica Colombiana; Vol. 26 Núm. 2 (2021); 186 - 195 ; Acta Biológica Colombiana; Vol. 26 No. 2 (2021); 186 - 195 ; 1900-1649 ; 0120-548X

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    Relation: https://revistas.unal.edu.co/index.php/actabiol/article/view/83289/77681; Adler PB, Fajardo A, Kleinhesselink AR, Kraft NJB. Traits-based tests of coexistence mechanisms. Ecol Lett. 2013;16(10):1294-1306. Doi: https://doi.org/10.1111/ele.12157; Ballina-Gómez HS, Iriarte-Vivar S, Orellana R, Santiago LS. Compensatory growth responses to defoliation and light availability in two native Mexican woody plant species. J Trop Ecol. 2010;26(2):163-171. Doi: https://doi.org/10.1017/S0266467409990514; Ballina-Gómez HS, Iriarte-Vivar S, Orellana R, Santiago LS. Crecimiento, supervivencia y herbivoría de plántulas de Brosimum alicastrum (Moraceae), una especie del sotobosque neotropical. Rev Biol Trop. 2008;56(4):2055-2067. Doi: https://doi.org/10.1551/rbt.v56i4.5779; Beckage B, Clark JS. Does predation contribute to tree diversity? Oecologia. 2005;143:458–469. Doi: https://doi.org/10.1007/s00442-004-1815-9; Bixenmann RJ, Coley PD, Weinhold, A, Kursar TA. High herbivore pressure favors constitutive over induced defense. Ecol Evol. 2016;6(17):6037-6049. Doi: https://doi.org/10.1002/ece3.2208; Blundell AG, Peart DR. Growth strategies of a shade-tolerant tropical tree: the interactive effects of canopy gaps and simulated herbivory. J Ecol. 2001;89(4):608-615. Doi: https://doi.org/10.1046/j.0022-0477.2001.00581.x; Challenger A, Soberón J. Los ecosistemas terrestres. ed. Capital natural de México: Conocimiento actual de la biodiversidad. Vol. I. , México, D.F: CONABIO; 2008. p. 87-108.; Dahlgren E, Lehtilä K. Tolerance to apical and leaf damage of Raphanus raphanistrum in different competitive regimes. Ecol Evol. 2015;5(22):5193-5202. Doi: https://doi.org/10.1002/ece3.1759; de la Cruz M, Dirzo R. A survey of the standing levels of herbivory in seedlings from a Mexican Rain Forest. Biotropica. 1987;19(2):98-106. Doi: https://doi.org/10.2307/2388730; Dirzo R. Estudios sobre interacciones planta-herbívoro en Los Tuxtlas, Veracruz. Rev Biol Trop. 1987;35(1):119-131. Pirk GI, Farji-Brener AG. Can the nutrient-rich soil patches created by leaf-cutting ants favor plant compensation for a foliar damage? A test of the compensatory continuum hypothesis. Plant Ecol. 2013;214(8):1059-1070. Doi: https://doi.org/10.1007/s11258-013-0231-9; Feeny P. Seasonal changes in oak leaf tannins and nutrients as a cause of spring feeding by winter moth caterpillars. Ecology 1970;51(4):565-581. Doi: https://doi.org/10.2307/1934037; Gap Light Analyzer: Imaging software to extract canopy structure and gap light transmission indices from true-color fisheye photographs. Version 2.0. Millbrook (NY): Simon Fraser University, Burnaby, BC, and the Institute of Ecosystem Studies; 1999.; Giertych MJ, Karolewski P, Oleksyn J. Carbon allocation in seedlings of deciduous tree species depends on their shade tolerance. Acta Physiol Plant. 2015;37:216. Doi: https://doi.org/10.1007/s11738-015-1965-x; Goodale UM, Berlyn GP, Gregoire TG, Tennakoon KU, Ashton MS. Differences in survival and growth among tropical rain forest pioneer tree seedlings in relation to canopy openness and herbivory. Biotropica. 2014;46(2):183-193. Doi: https://doi.org/10.1111/btp.12088; Gutiérrez-Granados G. Herbivoría y conservación en una selva seca del centro de México. Rev Chapingo Ser Cienc Forest Amb. 2000;6(2):113-117.; Hoekman D. Turning up the heat: temperature influences the relative importance of top-down and bottom up effects. Ecology 2010;91(10):2819-2825. Doi: https://doi.org/10.1890/10-0260-1; Hunt R. Basic growth analysis: Plant growth analysis for beginners. London, UK: Unwin Hyman;. 1978. p. 112.; Huot B, Yao J, Montgomery BL, He SY. Growth-Defense Tradeoffs in plants: A balancing act to optimize fitness. Mol Plant. 2014;7(8):1267-1287. Doi: https://doi.org/10.1093/mp/ssu049; Vivar Balderrama SI, Chazdon RL. Light-dependent seedling survival and growth of four tree species in Costa Rican second-growth rain forests. J Trop Ecol. 2005;21(4):383–395. Doi: https://doi.org/10.107/S026646740500235X; Koricheva J. Meta-analysis of sources of variation in fitness costs of plant antiherbivore defenses. Ecology. 2002;83(1):176-90. Doi: https://doi.org/10.1890/0012-9658(2002)083[0176:MAOSOV]2.0.CO;2; Lind EM, Borer E, Seabloom E, Adler P, Bakker JD, Blumenthal DM, et al. Life-history constraints in grassland plant species: a growth-defence trade-off is the norm. Ecol Lett. 2013;16(4):513-521. Doi: https://doi.org/10.1111/ele.12078; Lloyd KM, Pollock ML, Mason NWH, Lee WG. Leaf trait palatability relationships differ between ungulate species: evidence from cafeteria experiments using nave tussock grasses. N Z J Ecol. 2010;34(2):219-226.; Makkar HSP. Quantification of tannins in tree in and shrub foliage: a laboratory manual. Netherland: Springer, Dordrecht; 2003. p. 49-51.; Marthews TR, Burslem DFRP, Phillips RT, Mullins CE. Modeling direct radiation and canopy gap regimes in tropical forests. Biotropica. 2008;40(6):676-685. Doi: https://doi.org/10.1111/j.1744-7429.2008.00431.x; Martínez-Pachón E, Moreno Pallares MI, Cuervo Martínez MA. Herbivoría en plantas de crecimiento rápido y lento de un bosque húmedo tropical de Colombia: una prueba de la hipótesis de disponibilidad de recursos. In: Argenis-Bonilla M, Dirzo R. ed. Interacciones planta-animal: Ecología evolutiva y conservación. Bogotá, Colombia: Universidad Nacional de Colombia; 2010. p. 16-25.; Maschinski J, Whitham TG. The continuum of plant responses to herbivory: the influence of plant association, nutrient availability, and timing. Am Nat. 1989;134(1):1-19. Doi: https://doi.org/10.1086/284962; Moraes Neto S, Goncalves J, Takaki, Cenci S, Goncalves J. Crescimiento de mudas de algunas espécies arbóreas que ocurrem na mata atlántica, em funcao do nível de luminosidade. Rev Árv. 2000;24(1):35-45.; Norghauer JM, Newbery DM. Herbivore differentially limit the seedlings growth and sapling recruitment of two dominant rain forest trees. Oecologia. 2014;174:459-469. Doi: https://doi.org/10.1007/s00442-013-2769-6; Piña M, Arboleda ME. Efecto de dos ambientes lumínicos en el crecimiento inicial y calidad de plantas de Crescentia cujete. Bioagro. 2010;22(1):61-66.; Pieterse CMJ, Van der Does D, Zamioudis C, Leon-Reyes A, Van Wees SCM. Hormonal modulation of plant immunity. Annu Rev Cell Dev Biol. 2012;28:489–521. Doi: https://doi.org/10.1146/annurev-cellbio-092910-154055; Poorter H, Nagel O. The role of biomass allocation in the growth response of plants to different levels of light, CO2, nutrients and water: a quantitative review. Aust J Plant Physiol. 2000;27(6):1191-1191. Doi:https://doi.org/10.1071/PP99173 https://doi.org/10.1071/PP99173_CO; Poorter H, Niklas KJ, Reich PB, Oleksyn J, Poot P, Mommer L. Biomass allocation to leaves, stems and roots: meta-analyses of interspecific variation and environmental control. New Phytol. 2012;193(1):30-50. Doi: https://doi.org/10.1111/j.1469-8137.2011.03952.x; Price PW, Waring GL, Julkunen-Tiitto R, Tahvanainen J, Mooney HA, Craig TP. Carbon–nutrient balance hypothesis in within-species phytochemical variation of Salix lasiolepis. J Chem Ecol. 1989;15:1117–1131. Doi: https://doi.org/10.1007/BF01014816; Quero JL, Sterck FJ, Martínez-Vilalta J, Villar R. Water-use strategies of six co-existing Mediterranean woody species during a summer drought. Oecologia. 2011;166:45–57. Doi: https://doi.org/10.1007/s00442-011-1922-3; Quero JL, Villar R, Marañón T, Zamora R, Vega D, Sack L. 2008. Relating leaf photosynthetic rate to whole-plant growth: drought and shade effects on seedlings of four Quercus species. Funct Plant Biol. 35:725–737. Doi: https://doi.org/10.1071/FP08149; Image J. Version 1.37. USA: National Institutes of Health; 1997.; Rego G, Possamai E. Efeito do sombreamento sobre o teor de clorofila e crescimento inicial do Jequitibá-rosa. Pesqui Florest Bras. 2006;53:179-194.; Salgado-Duarte C, Gianoli E. Herbivores modify selection on plant functional traits in a temperate rainforest understory. Am Nat. 2012180(2):E42-E53. Doi: https://doi.org/10.1086/666612; Sterck FJ, Duursma RA, Pearcy RW, Valladares F, Cieslak M, Weemstra M. Plasticity influencing the light compensation point offsets the specialization for light niches across shrub species in a tropical forest understorey. J Ecol. 2013;101(4):971-80. Doi: https://doi.org/1365-2745-12076; Statistica. Version 8.0. Tulsa (OK): Stat Soft; 2008.; Stowe KA, Marquis RJ, Hochwender CG, Simms EL. The evolutionary ecology of tolerance to consumer damage. Annu Rev Ecol Syst. 2000;31:565–595. Doi: https://doi.org/10.1146/annurev.ecolsys.31.1.565; Temme AA, Liu JC, Cornwell WK, Aerts R, Cornelissen JHC. Hungry and thirsty: Effect of CO2 and limited water availability on plant performance. Flora. 2019;254:188-193. Doi: https://doi.org/10.1016/j.flora.2018.11.006; Valladares F, Aranda I, Sánchez D. La luz como factor ecológico y evolutivo para las plantas y su interacción con el agua. In: F. Valladares, ed. Ecología del bosque mediterráneo en un mundo cambiante. Madrid, España: Ministerio de Medio Ambiente (EGRAF); 2004. p:335-369.; Valladares F, Laanisto L, Niinemets Ü, Zavala MA. Shedding light on shade: ecological perspectives of understorey plant life. Plant Ecol Divers. 2016;9(3):237-251. Doi: https://doi.org/10.1080/17550874.2016.1210262; Villar F, Ruíz RJ, Quero J, Poorter H, Valladares F, Marañon T. Tasas de crecimiento en especies leñosas: aspectos funcionales e implicaciones ecológicas. In: Valladares F, editors. Ecología del bosque mediterráneo en un mundo cambiante. Madrid, España: Ministerio de Medio Ambiente (EGRAF); 2008. p: 193-230.; Westoby M, Warton D, Reich PB. The time value of leaf area. Am Nat. 2000;155(5):649-656. Doi: https://doi.org/10.1086/303346; Zamora-Crescencio P, García-Gil G, Flores-Guido JS, Ortiz JJ. Estructura y composición florística de la selva mediana subcaducifolia en el sur del estado de Yucatán, México. Polibotánica. 2008;26:39-66.; Züst T, Agrawal AA. Trade-offs between plant growth and defense against insect herbivory: an emerging mechanistic synthesis. Annu Rev Plant Biol. 2017;68:513-534. Doi: https://doi.org/10.1146/annurev-arplant-042916-040856; https://revistas.unal.edu.co/index.php/actabiol/article/view/83289

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