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Abrego, N., & Ovaskainen, O. (2023). Evaluating the predictive performance of presenceâabsence models: Why can the same model appear excellent or poor?. Ecology and Evolution, 13(12), e10784.
Allouche, O., Tsoar, A., & Kadmon, R. (2006). Assessing the accuracy of species distribution models: prevalence, kappa and the true skill statistic (TSS). Journal of Applied Ecology, 43(6), 1223â1232.
Bagyaraj, M., Gurugnanam, B., & Nagar, A. (2011). The significance of morphometry studies, soil characteristics, erosion phenomena, and landform processes using remote sensing and GIS for the Kodaikanal Hills, a global biodiversity hotspot in the Western Ghats, Dindigul District, Tamil Nadu, South India. Research Journal of Environmental and Earth Sciences, 3(3), 221â233.
Bayle, G. (2019). Ecological and social impacts of eucalyptus tree plantation on the environment. Journal of Biodiversity Conservation and Bioresource Management, 5(1), 93â104.
Becerra, P. I., Catford, J. A., Inderjit, McLeod M. L., Andonian, K., Aschehoug, E. T., & Callaway, R. M. (2018). Inhibitory effects of Eucalyptus globulus on understorey plant growth and species richness are greater in non-native regions. Global Ecology and Biogeography, 27(1), 68â76.
Belachew, K. G., & Minale, W. K. (2025). Socioeconomic and environmental impacts of Eucalyptus plantations in Ethiopia: An evaluation of benefits, challenges, and sustainable practices. The Scientific World Journal, 2025(1), 1780293.
Boden, R. W. (1964). Eucalyptus in Indian Forestry. Australian Forestry, 28(4), 234â241.
Booth, T. H. (2012). Eucalypts and their potential for invasiveness, particularly in frost-prone regions. International Journal of Forestry Research, 2012.
Brown, J. L., Bennett, J. R., & French, C. M. (2017). SDMtoolbox 2.0: the next generation Python-based GIS toolkit for landscape genetic, biogeographic and species distribution model analyses. PeerJ, 5, e4095.
Calviño-Cancela, M., & van Etten, E. J. (2018). Invasive potential of Eucalyptus globulus and Pinus radiata into native eucalypt forests in Western Australia. Forest ecology and management, 424, 246â258.
Calviño-Cancela, M., & Rubido-Bará, M. (2013). Invasive potential of Eucalyptus globulus: Seed dispersal, seedling recruitment and survival in habitats surrounding plantations. Forest Ecology and Management, 305, 129â137.
Deomurari, A., Sharma, A., Ghose, D., & Singh, R. (2023). Projected shifts in bird distribution in India under climate change. Diversity, 15(3), 404.
Edward, P. S., Regupathikannan, J., Samson, A., & Moinudheen, N. (2025). Evaluation of habitat suitability and ecological niche modelling of a vulnerable passerine Kashmir Flycatcher (Ficedula subrubra). Biology Bulletin, 52(4), 157â166.
Elith, J., H. Graham, C., P. Anderson, R., DudÃk, M., Ferrier, S., Guisan, A., ⦠& E. Zimmermann, N. (2006). Novel methods improve prediction of speciesâ distributions from occurrence data. Ecography, 29(2), 129â151.
Elith, J., Phillips, S. J., Hastie, T., DudÃk, M., Chee, Y. E., & Yates, C. J. (2011). A statistical explanation of MaxEnt for ecologists. Diversity and distributions, 17(1), 43â57.
Ferrier, S., Drielsma, M., Manion, G., & Watson, G. (2002). Extended statistical approaches to modelling spatial pattern in biodiversity in northeast New South Wales. II. Community-level modelling. Biodiversity & Conservation, 11, 2309â2338.
Fick, S. E., & Hijmans, R. J. (2017). WorldClim 2: new 1-km spatial resolution climate surfaces for global land areas. International Journal of Climatology, 37(12), 4302â4315.
Gadgil, M., Krishnan, B. J., Ganeshiah, K. N., Vijayan, V. S., Borges, R., Sukumar, R., Noronha, L., Nayak, V. S., Subramaniam, D. K., Varma, R. V., Gautam, S. P., Navalgund, R. R., & Subrahmanyam, G. V. (2011). Report of the Western Ghats Ecology Expert Panel (Part I). Submitted to the Ministry of Environment and Forests, Government of India.
Hagen, O. (2023). Coupling eco-evolutionary mechanisms with deep-time environmental dynamics to understand biodiversity patterns. Ecography, 2023(4), e06132.
Hiwale, S. (2015). Eucalyptus (Eucalyptus sp.). Sustainable horticulture in semiarid dry lands Springer India.
Honeysett, J. L., White, D. A., Worledge, D., & Beadle, C. L. (1996). Growth and water use of Eucalyptus globulus and E. nitens in irrigated and rainfed plantations. Australian Forestry, 59(2), 64â73.
Isaac, N. J., van Strien, A. J., August, T. A., de Zeeuw, M. P., & Roy, D. B. (2014). Statistics for citizen science: extracting signals of change from noisy ecological data. Methods in Ecology and Evolution, 5(10), 1052â1060.
Krishnakumar, N., Sivakumar, V., & Anandalakshmi, R. (2014). Eucalypt improvement in southern India. Eucalypts in India; ENVIS Forestry Bulletin, Forest Research Institute: Dehradun, India, 139â148.
Lan, Z., Huiliang, L., Hongxiang, Z., Yanfeng, C., Lingwei, Z., Kudusi, K., ⦠& Yuanming, Z. (2022). Potential distribution of three types of ephemeral plants under climate changes. Frontiers in Plant Science, 13, 1035684.
Lobo, J. M., Jiménez-Valverde, A., & Real, R. (2008). AUC: a misleading measure of the performance of predictive distribution models. Global Ecology and Biogeography, 17(2), 145â151.
López-Sánchez, C. A., Castedo-Dorado, F., Cámara-Obregón, A., & Barrio-Anta, M. (2021). Distribution of Eucalyptus globulus Labill. in northern Spain: Contemporary cover, suitable habitat and potential expansion under climate change. Forest Ecology and Management, 481, 118723.
Luna, R. K. (2009). Eucalypts in agroforestry. Eucalypts in India; ENVIS Centre on Forestry: Dehradun, India, 209.
Meher-Homji, V. M. (1967). Phytogeography of the South Indian hill stations. Bulletin of the Torrey Botanical Club, 230â242.
Merckx, B., Steyaert, M., Vanreusel, A., Vincx, M., & Vanaverbeke, J. (2011). Null models reveal preferential sampling, spatial autocorrelation and overfitting in habitat suitability modelling. Ecological Modelling, 222(3), 588â597.
Merow, C., Smith, M. J., & Silander Jr, J. A. (2013). A practical guide to MaxEnt for modelling speciesâ distributions: what it does, and why inputs and settings matter. Ecography, 36(10), 1058â1069.
Merow, C., Smith, M. J., Edwards Jr, T. C., Guisan, A., McMahon, S. M., Normand, S., ⦠& Elith, J. (2014). What do we gain from simplicity versus complexity in species distribution models?. Ecography, 37(12), 1267â1281.
Miller, D. A. W., Krishna Pacifici, Jamie S. Sanderlin, and Brian J. Reich. (2019). The recent past and promising future for data integration methods to estimate speciesâ distributions. Methods in Ecology and Evolution, 10, 22â37.
Mosisa, G. B., Tassie, N., & Adula, M. (2024). Current and future distribution of Eucalyptus globulus under changing climate in Ethiopia: implications for forest management. Environmental Systems Research, 13(1), 4.
Moukrim, S., Lahssini, S., Rhazi, M., Alaoui, H. M., Benabou, A., Wahby, I., ⦠& Rhazi, L. (2019). Climate change impacts on potential distribution of multipurpose agroforestry species: Argania spinosa (L.) Skeels as case study. Agroforestry Systems, 93, 1209â1219.
Myers, N., Mittermeier, R. A., Mittermeier, C. G., Da Fonseca, G. A., & Kent, J. (2000). Biodiversity hotspots for conservation priorities. Nature, 403(6772), 853â858.
Nagendra, H., & Utkarsh, G. (2003). Landscape ecological planning through a multi-scale characterization of pattern: studies in the Western Ghats, South India. Environmental Monitoring and Assessment, 87, 215â233.
Pascual-Hortal, L., & Saura, S. (2007). Impact of spatial scale on the identification of critical habitat patches for the maintenance of landscape connectivity. Landscape and Urban Planning, 83(2â3), 176â186.
Phillips, S. J. (2005). A brief tutorial on Maxent. At&t Research, 190(4), 231â259.
Phillips, S. J., & DudÃk, M. (2008). Modeling of species distributions with Maxent: new extensions and a comprehensive evaluation. Ecography, 31(2), 161â175.
Phillips, S. J., Anderson, R. P., & Schapire, R. E. (2006). Maximum entropy modeling of species geographic distributions. Ecological modelling, 190(3â4), 231â259.
Phillips, S. J., Anderson, R. P., DudÃk, M., Schapire, R. E., & Blair, M. E. (2017). Opening the black box: An open-source release of Maxent. Ecography, 40(7), 887â893.
Qiao, H., Soberón, J., & Peterson, A. T. (2015). No silver bullets in correlative ecological niche modelling: insights from testing among many potential algorithms for niche estimation. Methods in Ecology and Evolution, 6(10), 1126â1136.
Radosavljevic, A., & Anderson, R. P. (2014). Making better Maxent models of species distributions: complexity, overfitting and evaluation. Journal of Biogeography, 41(4), 629â643.
Ramette, A., & Tiedje, J. M. (2007). Biogeography: an emerging cornerstone for understanding prokaryotic diversity, ecology, and evolution. Microbial ecology, 53, 197â207.
Ravindranath, N. H., Sukumar, R., & Deshingkar, P. (1997). Climate change and forests: Impacts and adaption. A regional assessment for the Western Ghats, India.
Razgour, O., Hanmer, J., & Jones, G. (2011). Using multi-scale modelling to predict habitat suitability for species of conservation concern: the grey long-eared bat as a case study. Biological Conservation, 144(12), 2922â2930.
Rushton, S. P., Ormerod, S. J., & Kerby, G. (2004). New paradigms for modelling species distributions?. Journal of applied ecology, 41(2), 193â200.
Schinato, F., Munka, M. C., Olmos, V. M., & Bussoni, A. T. (2023). Microclimate, forage production and carbon storage in a eucalypt-based silvopastoral system. Agriculture, Ecosystems & Environment, 344, 108290.
Shabani, F., Kumar, L., & Ahmadi, M. (2016). A comparison of absolute performance of different correlative and mechanistic species distribution models in an independent area. Ecology and Evolution, 6(16), 5973â5986.
Sillero, N., & Barbosa, A. M. (2021). Common mistakes in ecological niche models. International Journal of Geographical Information Science, 35(2), 213â226.
Suresh, H. S., & Sukumar, R. (2011). Vegetative phenology of tropical montane forests in the Nilgiris, South India. Journal of the National Science Foundation of Sri Lanka, 39(4).
Swets, J. A. (1988). Measuring the accuracy of diagnostic systems. Science, 240(4857), 1285â1293.
Syfert, M. M., Smith, M. J., & Coomes, D. A. (2013). The effects of sampling bias and model complexity on the predictive performance of MaxEnt species distribution models. PloS one, 8(2), e55158.
Tomé, M., Almeida, M. H., Barreiro, S., Branco, M. R., Deus, E., Pinto, G., ⦠& RodrÃguez-Soalleiro, R. (2021). Opportunities and challenges of Eucalyptus plantations in Europe: the Iberian Peninsula experience. European Journal of Forest Research, 140(3), 489â510.
Turnbull, J. W., & Booth, T. H. (2002). Eucalypts in cultivation: an overview. Eucalyptus, 66â88.
Umapathy, G., & Kumar, A. (2000). The occurrence of arboreal mammals in the rain forest fragments in the Anamalai Hills, south India. Biological Conservation, 92(3), 311â319.
Untalan, M. Z. G., Burgos, D. F. M., & Martinez, K. P. (2019). Species distribution modelling of two species endemic to the Philippines to show the applicability of MaxEnt. The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences, 42, 449â454.
Waring, E. J. (1868). Pharmacopoeia of India: Prepared Under the Authority of Her Majestyâs Secretary of State for India in Council. WH Allen.
White, D. A., Beadle, C. L., & Worledge, D. (1996). Leaf water relations of Eucalyptus globulus ssp. globulus and E. nitens: seasonal, drought and species effects. Tree physiology, 16(5), 469â476.
White, D. A., Silberstein, R. P., Balocchi-Contreras, F., Quiroga, J. J., Meason, D. F., Palma, J. H., & de Arellano, P. R. (2021). Growth, water use, and water use efficiency of Eucalyptus globulus and Pinus radiata plantations compared with natural stands of Roble-Hualo forest in the coastal mountains of central Chile. Forest Ecology and Management, 501, 119676.
Williams, K. J., & Potts, B. M. (1996). The natural distribution of Eucalyptus species in Tasmania. Tasforests-Hobart-, 8, 39â45.
Young, N., Carter, L., & Evangelista, P. & Jarnevich, C. (2011). A MaxEnt model v3. 3.3 e tutorial (ArcGIS v10). Natural Resource Ecology Laboratory, Colorado State University and the National Institute of Invasive Species Science.
| Insgesamt | Letzte 365 Tage | In den letzten 30 Tagen | |
|---|---|---|---|
| Aufrufe von Kurzbeschreibungen | 159 | 159 | 77 |
| Gesamttextansichten | 6 | 6 | 1 |
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| Insgesamt | Letzte 365 Tage | In den letzten 30 Tagen | |
|---|---|---|---|
| Aufrufe von Kurzbeschreibungen | 159 | 159 | 77 |
| Gesamttextansichten | 6 | 6 | 1 |
| PDF-Downloads | 8 | 8 | 0 |