AGRIS - 国际农业科技情报系统

Studying the forest and ecological potentialities of Abies cilicica (Antoine & Kotschy) Carr. forest using GIS for integrated management plan-Slenfe- Lattakia

2023

Bashar Ghassan Tobo


书目信息
出版者
Tishreen University Faculty of Agriculture Engineering
其它主题
Cedar and fir reserve; Plant biodiversity; Economic and social effects; محمية الأرز والشوح; Alometric equations; Wood productivity; معادلات ألومترية; Cilician fir; الشوح الكيليكي; الإنتاجية الخشبية; التنوّع الحيوي النباتي; الآثار الاقتصادية والاجتماعية
语言
阿拉伯
注释
References 1. Ali, W. (2009). Assessment Of Growth and Biomass Production In Short Rotation Stands Of Poplar In Saxony. MSc. Thesis, Faculty of Forest, Geo and Hydro Sciences Dresden University of Technology, Germany, p 49. 2. Alizoti PG, Fady B, Prada MA, Vendramin GG. (2011). EUFORGEN technical guidelines for genetic conservation and use of Mediterranean firs ( Abies spp.). Bioversity International, Rome, p 6. 3. Andrade, G. S., & Rhodes, J. R. (2012). Protected areas and local communities: an inevitable partnership toward successful conservation strategies?. Ecology and society, 17(4).4. Arista M.L., Alaoui S., Knees M. (2011). Gardne The IUCN Red List of Threatened Species. pp. 42295/0+ 5. Aussenac, G. (2002). Ecology and ecophysiology of circum-Mediterranean firs in the context of climate change. Annals of Forest Science, 59(8), 823-832. 6. Barbault, R. (1995). Biodiversity dynamics: from population and community ecology approaches to a landscape ecology point of view. Landscape and urban planning, 31(1-3), 89-98. 7. Barrance, A., Schreckenberg, K., & Gordon, J. (2009). Conservation through use: lessons from the Mesoamerican dry forest. 8. Beridze, B., Walas, Ł., Iszkuło, G., Jasińska, A. K., Kosiński, P., Sękiewicz, K., ... & Dering, M. (2021). Demographic history and range modelling of the East Mediterranean Abies cilicica. Plant and Fungal Systematics, 66(2), 122-132. 9. Boratynska K, Jasinska AK, Boratynski A (2015). Taxonomic and geographic differentiation of Pinus mugo complex on the needle characteristics. Systematics and Biodiversity 13: 581-595. 10. Bouzillé J.-B (2007) Gestion des habitats naturels et biodiversité : concepts, méthodes et démarches. Lavoisier, Paris, 331 p. 1. Bozkuş, F. (1988). The natural distribution and silvicultural characteristics of Abies cilicica Carr. Turkey [PhD thesis]. Istanbul: Forest Faculty of the Istanbul University. 2. Bozkuş, F. (1997). Toros Göknar (Abies cilicica Carr.)'nınsaf meşcereleri ile sedir (Cedrus libani Link.) ve karaçam (Pinus nigra subs. Pallasiana Lamb.) karışık meşçerelerinde hacim ilişkileri. Journal of the Faculty of Forestry Istanbul University, 47(2), 59-72. 3. Braun J., Furrer E. (1913). Remarque sur l’étude des groupements de plantes. Bull. Soc. Languedocienne Géogr., s.n., 20‑41. 4. Brooks, J. R., Jiang, L., & Ozçelik, R. (2008). Compatible stem volume and taper equations for Brutian pine, Cedar of Lebanon, and Cilicica fir in Turkey. Forest Ecology and Management, 256(1-2), 147-151. 5. Browicz, K. (1982). Chorology of trees and shrubs in South-West Asia and adjacent regions. Vol. 1. Chorology of trees and shrubs in South-West Asia and adjacent regions. Vol. 1. 6. Burley, J. (2004). Encyclopedia of forest sciences. Academic Press. 7. Cade, B. S. (1997). Comparison of tree basal area and canopy cover in habitat models: Subalpine forest. The Journal of wildlife management, 326-335.8. Calama, R., Manso, R., Gordo, J., Montero, G., Mutke, S., Piqué, M., ... & Pardos, M. (2017). Which models are needed for Pinus pinea forests?. In Options Méditerranéennes. Series A: Mediterranean Seminars. INIAV, Instituto Nacional de Investigação Agrária e Veterinária IP; ISA-CEF, Instituto Superior de Agronomia-Centro de Estudos Florestais; CIHEAM-IAMZ, Mediterranean Agronomic Institute of Zaragoza (Spain); FAOCIHEAM Network on Nuts; UNAC, União da Fl. 9. Canadell, J. G., & Raupach, M. R. (2008). Managing forests for climate change mitigation. science, 320(5882), 1456-1457. 10. Carus, S. (2010). Pre-growth mortality of Abies cilicica trees and mortality models performance. Journal of Environmental Biology, 31(3), 363. 11. Caudullo, G., & Tinner, W. (2016). Abies–Circum-Mediterranean firs in Europe: distribution, habitat, usage and threats. 12. Cernea, M. M., & Schmidt-Soltau, K. (2006). Poverty risks and national parks: Policy issues in conservation and resettlement. World development, 34(10), 1808-1830. 13. Chazdon, R. L. (2014). Synthesis: The Promise of Tropical Forest Regeneration in an Age of Deforestation. In Second Growth (pp. 304-316). University of Chicago Press. 14. Chazdon, R. L., Peres, C. A., Dent, D., Sheil, D., Lugo, A. E., Lamb, D., ... & Miller, S. E. (2009). The potential for species conservation in tropical secondary forests. Conservation biology, 23(6), 1406-1417. 15. Chuvieco, E., & Congalton, R. G. (1989). Application of remote sensing and geographic information systems to forest fire hazard mapping. Remote sensing of Environment, 29(2), 147-159. 16. Coetzee, B. W., Gaston, K. J., & Chown, S. L. (2014). Local scale comparisons of biodiversity as a test for global protected area ecological performance: a metaanalysis. PloS one, 9(8), e105824. 17. Coomes, O. T., & Burt, G. J. (2001). Peasant charcoal production in the Peruvian Amazon: rainforest use and economic reliance. Forest Ecology and Management, 140(1), 39-50. 18. Crawford, P. D., & Oliver, C. D. (1990). Abies amabilis Dougl. ex Forbes, Pacific silver fir. Silvics of North America, 1, 17-25. 19. Curtis, R. O. (1967). Height-diameter and height-diameter-age equations for secondgrowth Douglas-fir. Forest science, 13(4), 365-375. 20. Daget, J. (1976). Les modèles mathématiques en écologie (No. 504: 51 DAG). Paris: Masson.21. Dajoz, R. (2006). Précis d’écologie: Cours et questions de réflexions. 8ème Ed. Dunod, P 630. 22. Dang, H., Zhang, K., Zhang, Y., Tong, X., & Zhang, Q. (2013). Regeneration dynamics of subalpine fir (Abies fargesii) forest across the altitudinal range in the Shennongjia Mountains, central China. Journal of Plant Ecology, 6(1), 36-47. 23. Davis, P. H. 1965-1985. Flora of Turkey and The East Aegean Islands. Vol: I-IX. 24. Dayisoylu, K. S., & Alma, M. H. (2009). Chemical analysis of essential oils from cone's rosin of Cilician fir (Abies cilicica subsp. cilicica). African Journal of Biotechnology, 8(15), 3502. 25. Djègo J, Gibigaye M, Tente B, Sinsin B. (2012). Analyses écologique et structurale de la forêt communautaire de Kaodji au Bénin. Int. J. Biol. Chem. Sci. 6(2): 705-713. 26. Dudley, N., & Stolton, S. (2008). Defining protected areas: an international conference in Almeria, Spain. IUCN, Gland. 27. Edwards, D. G. W. (2008). Abies P. Mill. Woody plant seed manual. US Dep. Agric. Forest Service Agriculture Handbook, 727. 28. Ehrlich, P. R., & Wilson, E. O. (1991). Biodiversity studies: science and policy. Science, 253(5021), 758-762. 29. Ernst, S., & Pong, W. Y. (1982). Predicting lumber volume and value of young-growth true firs: User's guide [Abies magnifica, Abies concolor, Abies grandis]. USDA Forest Service general technical report PNW-United States. 30. Ervin, J., Mulongoy, K. J., Lawrence, K., Game, E., Sheppard, D., Bridgewater, P., ... & Bos, P. (2010). Making Protected Areas Relevant: A guide to integrating protected areas into wider landscapes, seascapes and sectoral plans and strategies. CBD Technical Series, 44(5), 1-94. 31. FAO (Food and Agriculture Organization of the United Nations) and UNEP (the United Nations Environment Program). (2020). The State of the World's Forests. Forests, biodiversity and people. Rome. 32. FAO (Food and Agriculture Organization of the United Nations). (2022). Natural Forest Management. (https://www.fao.org/forestry/sfm/85084/en/). 33. FAO (Food and Agriculture Organization of the United Nations). (2020). Global Forest Resources Assessment 2020 – Key findings. Rome: doi:10.4060/ca8753en. ISBN 978- 92-5-132581-0. 34. FAO (Food and Agriculture Organization of the United Nations). (2015). Global Forest Resources Assessment. UN Food and Agriculture Organization, Rome.35. Farjon, A. (2010). A Handbook of the World’s Conifers (two vol. set). 36. Farjon, A., & Rushforth, K. D. (1989). A classification of Abies miller (Pinaceae). Miscellaneous publications of the University of Utrecht Herbarium, 3(1), 59- 79. 37. Fazey, I., Fischer, J. and Lindenmayer, D.B. (2005). What do conservation biologists publish? Biological conservation, 124, 63-73. 38. Felipe-Lucia, M. R., Soliveres, S., Penone, C., Manning, P., van der Plas, F., Boch, S., ... & Allan, E. (2018). Multiple forest attributes underpin the supply of multiple ecosystem services. Nature communications, 9(1), 4839. 39. Ficko, A., Poljanec, A., & Boncina, A. (2011). Do changes in spatial distribution, structure and abundance of silver fir (Abies alba Mill.) indicate its decline?. Forest Ecology and Management, 261(4), 844-854. 40. Gaines, W. L., Harrod, R. J., & Lehmkuhl, J. F. (1999). Monitoring biodiversity: quantification and interpretation (Vol. 443). US Department of Agriculture, Forest Service, Pacific Northwest Research Station. 41. Gairola, S., Rawal, R. S., Todaria, N. P., & Bhatt, A. (2014). Population structure and regeneration patterns of tree species in climate-sensitive subalpine forests of Indian western Himalaya. Journal of Forestry Research, 25(2), 343-349. 42. Ganatsas, P., Daskalakou, E., & Paitaridou, D. (2012). First results on early post-fire succession in an Abies cephalonica forest (Parnitha National Park, Greece). Iforest- Biogeosciences and Forestry, 5(1), 6. 43. Garcia de Oliveira, B., Gasques, J. G., & Bastos, E. T. (2004). Ecotourism in the Amazon. In Complexity and Integrated Resources Management: Transactions of the 2nd Biennial Meeting of the International Environmental Modelling and Software Society, IEMSs 2004, 14-17 June 2004, University of Osnabruck, Germany (pp. 1357-1362). 44. Gardner M, Knees S. (2013). Abies cilicica. The IUCN Red List of Threatened Species 2013; Available from: http://www.iucnredlist.org/details/full/42275/0. 45. Grall, J., & Hily, C. (2003). Traitement des données stationnelles (faune). IUEM (UBO)/LEMAR FT-10--01. doc, 1-10. 46. Guariguata, M. R. (1998). Response of forest tree saplings to experimental mechanical damage in lowland Panama. Forest Ecology and Management, 102(2-3), 103-111. 47. Hamilton, A., Cunningham, A., Byarugaba, D., & Kayanja, F. (2000). Conservation in a region of political instability: Bwindi Impenetrable Forest, Uganda. Conservation Biology, 14(6), 1722-1725.48. Heip, C. H., Herman, P. M., & Soetaert, K. (1998). Indices of diversity and evenness. Oceanis, 24(4), 61-88. 49. Holdgate, M. (1996). The ecological significance of biological diversity. Ambio. Stockholm, 25(6), 409-416. 50. Huang, C., Goward, S. N., Schleeweis, K., Thomas, N., Masek, J. G., & Zhu, Z. (2009). Dynamics of national forests assessed using the Landsat record: Case studies in eastern United States. Remote sensing of Environment, 113(7), 1430-1442. 51. Huang, S., Titus, S. J., & Wiens, D. P. (1992). Comparison of nonlinear height–diameter functions for major Alberta tree species. Canadian Journal of Forest Research, 22(9), 1297-1304. 52. Husch, B., Beers, T. W., & Kershaw Jr, J. A. (2002). Forest mensuration. John Wiley & Sons. 53. Jagodziński, A. M., Dyderski, M. K., Gęsikiewicz, K., & Horodecki, P. (2019). Tree and stand level estimations of Abies alba Mill. aboveground biomass. Annals of Forest Science, 76(2), 1-14. 54. Jiménez López, J., & Mulero-Pázmány, M. (2019). Drones for conservation in protected areas: present and future. Drones, 3(1), 10. 55. Kayitakire, F., Hamel, C., & Defourny, P. (2006). Retrieving forest structure variables based on image texture analysis and IKONOS-2 imagery. Remote sensing of environment, 102(3-4), 390-401. 56. Keleş, H., Ahmet, K. A. R. A., YAĞAN, Ö., & DAĞDELEN, M. (2012). A New Distribution Area of the Taurus Fir (Abies cilicica Carr.) in Turkey. Kastamonu University Journal of Forestry Faculty, 12(3), 114-120. 57. Kent, M. (2011). Vegetation description and data analysis: a practical approach. John Wiley & Sons. 58. Kettunenis, M., & Ten Brink, P. (2013). Social and economic benefits of protected areas. 59. Kindermann, G., Obersteiner, M., Sohngen, B., Sathaye, J., Andrasko, K., Rametsteiner, E., ... & Beach, R. (2008). Global cost estimates of reducing carbon emissions through avoided deforestation. Proceedings of the national Academy of Sciences, 105(30), 10302- 10307. 60. Krajňáková, J., Gömöry, D., & Häggman, H. (2014). Biotechnology tools for conservation of the biodiversity of European and Mediterranean Abies species. Biotechnology and Biodiversity, 287-310.61. Kujirakwinja, D., Plumptre, A. J., Twendilonge, A., Mitamba, G., Mubalama, L., Wasso, J. D. D., ... & Tshombe, R. (2019). Establishing the Itombwe Natural Reserve: science, participatory consultations and zoning. Oryx, 53(1), 49-57. 62. Kvitko, O. V., Muratova, E. N., & Bazhina, E. V. (2011). Cytogenetics of Abies sibirica in decline fir stands of West Sayan High Mountains. Contemporary problems of ecology, 4, 641-646. 63. Leung, Y. F., Spenceley, A., Hvenegaard, G., Buckley, R., & Groves, C. (2018). Tourism and visitor management in protected areas: Guidelines for sustainability (Vol. 27). Gland, Switzerland: IUCN. 64. Liu, J., Linderman, M., Ouyang, Z., An, L., Yang, J., & Zhang, H. (2001). Ecological degradation in protected areas: the case of Wolong Nature Reserve for giant pandas. Science, 292(5514), 98-101. 65. Liu, T. S. (1971). A Monograph of the Genus Abies, Taipei: National Taiwan University. 66. Liu, Y. F., Liu, Y., Shi, Z. H., López-Vicente, M., & Wu, G. L. (2020). Effectiveness of re-vegetated forest and grassland on soil erosion control in the semi-arid Loess Plateau. Catena, 195, 104787. 67. Magurran, A. E. (1988). Ecological diversity and its measurement. Princeton university press. 68. Marcon, E. (2015). Mesures de la biodiversité (Doctoral dissertation, AgroParisTech). 69. Matos, F. A., Magnago, L. F., Aquila Chan Miranda, C., de Menezes, L. F., Gastauer, M., Safar, N. V., ... & Edwards, D. P. (2020). Secondary forest fragments offer important carbon and biodiversity cobenefits. Global Change Biology, 26(2), 509-522. 70. MEA (Millennium Ecosystem Assessment). (2005). Chapter 1: MA Conceptual Framework. Dans W. V. Reid (dir.), Ecosystems and Human Well-being: The Assessment Series, 1, 25-36. Washington, DC: Island Press. 71. Medail, F., & Quezel, P. (1997). Hot-spots analysis for conservation of plant biodiversity in the Mediterranean Basin. Annals of the Missouri Botanical Garden, 112-127. 72. Médail, F., Monnet, A. C., Pavon, D., Nikolic, T., Dimopoulos, P., Bacchetta, G., ... & Leriche, A. (2019). What is a tree in the Mediterranean Basin hotspot? A critical analysis. Forest Ecosystems, 6(1), 1-19. 73. MEO-ECSDE (2012). Biodiversité dans la région méditerranéenne. Note de synthèse. www.mio-ecsde.org.74. Merhej, O., Ali, M., & Thabeet, A. (2022). Using CA-Markov Model to Predict Land Use/Land Cover Changes in Bayer and al-Bassit region, Latakia, Syria. Journal of Agricultural and Marine Sciences [JAMS], 27(2), 50-58. 75. MFRGFT (Ministry of Forests and Range Glossary of Forestry Terms in British Columbia). March 2008. 76. M'Hirit, O. (1999). Mediterranean forests: ecological space and economic and community wealth. UNASYLVA-FAO-, 3-15. 77. Miyajima, Y., & Takahashi, K. (2007). Changes with altitude of the stand structure of temperate forests on Mount Norikura, central Japan. Journal of forest research, 12(3), 187-192. 78. Moore, J. A., Zhang, L., & Stuck, D. (1996). Height-diameter equations for ten tree species in the Inland Northwest. Western Journal of Applied Forestry, 11(4), 132-137. 79. Mouterde, P. (1966). Nouvelle flore du Liban et de la Syrie. 80. Mukul, S. A., & Herbohn, J. (2016). The impacts of shifting cultivation on secondary forests dynamics in tropics: A synthesis of the key findings and spatio temporal distribution of research. Environmental Science & Policy, 55, 167-177. 81. Myers, R. H. (1990). Classical and modern regression with applications (Vol. 2, p. 488). Belmont, CA: Duxbury press. 82. Naidoo, R., Gerkey, D., Hole, D., Pfaff, A., Ellis, A. M., Golden, C. D., ... & Fisher, B. (2019). Evaluating the impacts of protected areas on human well-being across the developing world. Science Advances, 5(4), eaav3006. 83. Nascimento, L., Kuramochi, T., Iacobuta, G., den Elzen, M., Fekete, H., Weishaupt, M., ... & Höhne, N. (2022). Twenty years of climate policy: G20 coverage and gaps. Climate policy, 22(2), 158-174. 84. Owens, J. N., & Molder, M. (1985). The reproductive cycles of the true firs. Victoria, BC: British Columbia Ministry of Forests. Forestry Branch, Research Division. 85. Özçelik, R., Diamantopoulou, M. J., Brooks, J. R., & Wiant Jr, H. V. (2010). Estimating tree bole volume using artificial neural network models for four species in Turkey. Journal of environmental management, 91(3), 742-753. 86. Palomo, I., Martín-López, B., Alcorlo, P., & Montes, C. (2014). Limitations of protected areas zoning in Mediterranean cultural landscapes under the ecosystem services approach. Ecosystems, 17, 1202-1215.87. Palta, M. M., Richardson, E. A., & Sharitz, R. R. (2003). Effects of altered flow regimes on floodplain forest processes in the Savannah River basin. Georgia Institute of Technology. 88. Pande, P.K., Negi, J.D.S. and Sharma, S.C. (2001). Plant species diversity and vegetation analysis in moist temperate Himalayan forest. Indian Journal of Forestry, 24(4): 456-470. 89. Peet, R. K. (1974). The measurement of species diversity. Annual review of ecology and systematics, 5(1), 285-307. 90. Peng, C., Zhang, L., & Liu, J. (2001). Developing and validating nonlinear height– diameter models for major tree species of Ontario's boreal forests. Northern Journal of Applied Forestry, 18(3), 87-94. 91. Perelló, L. F. C., Guadagnin, D. L., Maltchik, L., & dos Santos, J. E. (2012). Ecological, legal, and methodological principles for planning buffer zones. Natureza & Conservação, 10(1), 3-11. 92. Pielou, E. C. (1966). Species-diversity and pattern-diversity in the study of ecological succession. Journal of theoretical biology, 10(2), 370-383. 93. Politi, P. I., Georghiou, K., & Arianoutsou, M. (2011). Reproductive biology of Abies cephalonica Loudon in Mount Aenos National Park, Cephalonia, Greece. Trees, 25, 655- 668. 94. Pretzsch, H. (2001). Modellierung des Waldwachstums, Parey Buchverlag Berlin, 341. 95. Raftoyannis, Y., Spanos, I., & Radoglou, K. (2008). The decline of Greek fir (Abies cephalonica Loudon): Relationships with root condition. Plant Biosystems, 142(2), 386- 390. 96. Rawat, B. S., Sharma, C. M., & Ghildiyal, S. (2008). Nature of variability in cone and seed characteristics and germination behaviour of different seed sources of silver fir (Abies pindrow Spach.). Indian Journal of Forestry (India). 97. Sharma, M., & Yin Zhang, S. (2004). Height–diameter models using stand characteristics for Pinus banksiana and Picea mariana. Scandinavian Journal of Forest Research, 19(5), 442-451. 98. Silva Junior, C. H., Heinrich, V. H., Freire, A. T., Broggio, I. S., Rosan, T. M., Doblas, J., ... & Aragão, L. E. (2020). Benchmark maps of 33 years of secondary forest age for Brazil. Scientific data, 7(1), 269. 99. Silva, J. P. (2008). LIFE and endangered plants: Conserving Europe's threatened flora. Office for Official Publications of the European Communities.100. Simon, D. (2006). Importance of biodiversity in national parks. Series: park sciencesspecial issues, New York, USA, 149 p. 101. Sohngen, B., & Mendelsohn, R. (2003). An optimal control model of forest carbon sequestration. American Journal of Agricultural Economics, 85(2), 448-457. 102. Soinne, H., Keskinen, R., Heikkinen, J., Hyväluoma, J., Uusitalo, R., Peltoniemi, K., ... & Rasa, K. (2020). Are there environmental or agricultural benefits in using forest residue biochar in boreal agricultural clay soil?. Science of the Total Environment, 731, 138955. 103. Straede, S., & Treue, T. (2006). Beyond buffer zone protection: A comparative study of park and buffer zone products' importance to villagers living inside Royal Chitwan National Park and to villagers living in its buffer zone. Journal of Environmental Management, 78(3), 251-267. 104. Thomas A. Spies, Jerry F. Franklin.( 1996). Biodiversity in Managed Landscapes :Theory and Practice, Strategies For Maintaining Biodiversity, Oxford University Press. New York. 778 p. 105. Tilman, D. (2000). Causes, consequences and ethics of iodiversity. Nature, 405(6783), 208-211. 106. Tiwari, R. M., Shrestha, B. B., & Kohyama, T. S. (2017). Topographic and anthropogenic factors shaping subalpine Abies spectabilis forest in Langtang National Park, Eastern Himalaya. Eurasian Journal of Forest Research, 20, 1-9. 107. Usta, I. (2004). The effect of moisture content and wood density on the preservative uptake of Caucasian fir (Abies nordmanniana (Link.) Spach.) treated with CCA. Turkish Journal of Agriculture and Forestry, 28(1), 1-7. 108. Vanclay, J. K. (1994). Modelling forest growth and yield: applications to mixed tropical forests. Cab International. 109. Vié, J. C., Hilton-Taylor, C., & Stuart, S. N. (Eds.). (2009). Wildlife in a changing world: an analysis of the 2008 IUCN Red List of threatened species. IUCN. 110. Wandersee, S. M., An, L., López-Carr, D., & Yang, Y. (2012). Perception and decisions in modeling coupled human and natural systems: A case study from Fanjingshan National Nature Reserve, China. Ecological Modelling, 229, 37-49. 111. Wenny, Daniel G., Devault, Travis L., Johnson, Matthew D., Kelly, Dave., Sekercioglu, Cagan H., Tomback, Diana F. and Whelan, Christopher J. (2011).The need to quantify ecosystem services provided by birds. The Auk Vol.128, No.1, 1-14. 112. Wulder, M. A., & Franklin, S. E. (2006). Understanding forest disturbance and spatial pattern: remote sensing and GIS approaches. CRC Press.113. YAHI N., KNEES S., GARDNER M. (2011). The IUCN Red List of Threatened Species. 30320/0+ 114. Yilmaz, M. (2008). Optimum germination temperature, dormancy, and viability of stored, non-dormant seeds of Malus trilobata (Poir.) CK Schneid. Seed Science and Technology, 36(3), 747-756. 115. Yoda, K. (1968). A preliminary survey of the forest vegetation of eastern Nepal. III. Plant biomass in the sample plots chosen from different vegetation zones. J Col Arts Sci Chiba Univ, 5, 277-302. 116. Young R. (1982). Introduction to Forest Science. John Wiley & sons. p. 207. ISBN 978-0471064381. 117. Zambiazi, D. C., Fantini, A. C., Piotto, D., Siminski, A., Vibrans, A. C., Oller, D. C., ... & Peña-Claros, M. (2021). Timber stock recovery in a chronosequence of secondary forests in Southern Brazil: Adding value to restored landscapes. Forest Ecology and Management, 495, 119352. 118. Zhou, J; Agichtein, E.; Kallumadi S. )2020(. Diversifying Multi-aspect Search Results Using Simpson’s Diversity Index . In Proceedings of the 29th ACM International Conference on Information and Knowledge Management (CIKM ’20), October 19–23, 2020, Virtual Event, Ireland. ACM, New York, NY, USA, 4 pages.
类型
Thesis

2024-03-07
EndNote