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    المصدر: Zhongshan Daxue xuebao. Yixue kexue ban, Vol 43, Pp 582-590 (2022)

    وصف الملف: electronic resource

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    المساهمون: CHU Saint-Antoine AP-HP, Assistance publique - Hôpitaux de Paris (AP-HP) (AP-HP)-Sorbonne Université (SU), Sorbonne Université (SU), Centre Hospitalier Régional Universitaire de Tours (CHRU Tours), Clinique Psychiatrique Universitaire Tours

    المصدر: ISSN: 2000-8198.

    Relation: info:eu-repo/semantics/altIdentifier/pmid/29441154; PUBMED: 29441154; PUBMEDCENTRAL: PMC5804808

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    Dissertation/ Thesis

    المساهمون: 范噶色, Stephan Van Gasselt

    وصف الملف: 15285371 bytes; application/pdf

    Relation: Reference Aidoo, O. F., Hao, M., Ding, F., Wang, D., Jiang, D., Ma, T., Qian, Y., Tettey, E., Yankey, N., Ninsin, K. D., & Borgemeister, C. (2022). The Impact of Climate Change on Potential Invasion Risk of Oryctes monoceros Worldwide. Frontiers in Ecology and Evolution, 10. https://doi.org/10.3389/fevo.2022.895906 Al-Amin, A. Q., & Alam, G. M. (2015). Impact of El-Niño on Agro-economics in Malaysia and the Surrounding Regions: An Analysis of the Events from 1997-98. Asian Journal of Earth Sciences, 9(1), 1–8. https://doi.org/10.3923/ajes.2016.1.8 Apiratikorn, S., Sdoodee, S., Lerslerwong, L., & Rongsawat, S. (2012). The impact of climatic variability on phenological change, yield and fruit quality of mangosteen in Phatthalung province, Southern Thailand. Agriculture and Natural Resources, 46(1), 1-9. Apiratikorn, S., Sdoodee, S., & Limsakul, A. (2014). Climate-related changes in tropical-fruit flowering phases in Songkhla province, southern Thailand. Research Journal of Applied Sciences, Engineering and Technology, 7(15), 3150–3158. https://doi.org/10.19026/rjaset.7.654 Benoit, K. (2011). Linear Regression Models with Logarithmic Transformations. https://kenbenoit.net/assets/courses/ME104/logmodels2.pdf Boonklong, O., Jaroenusutasinee, M., & Jaroenusutasinee, K. (2006). Climate change affecting mangosteen production in Thailand. In Proceedings of the 5th WSEAS International Conference on Environmental, Ecosystems and Development. Venice, Italy (pp. 20-22). Buasap, W. (2008). Handbook for Agricultural Extension Academics: Mangosteen (คู่มือนักวิชาการส่งเสริมการเกษตร: มังคุด). Bangkok: Bureau of Agricultural Commodities Promotion and Management, Department of Agriculture Extension. https://agkb.lib.ku.ac.th/doae/search_detail/result/282207 Buathong, K., Moonchai, S., Saenton, S., Supapakorn, T., & Rojsiraphisal, T. (2023). Predictive model for Northern Thailand rainfall using NIÑO indexes and sea surface height anomalies in the South China Sea. Journal of Marine Science and Engineering, 12(1), 35. https://doi.org/10.3390/jmse12010035 Cashin, P., Mohaddes, K., & Raissi, M. (2017). Fair weather or foul? The macroeconomic effects of El Niño. Journal of International Economics, 106, 37–54. https://doi.org/10.1016/j.jinteco.2017.01.010 Chantaraniyom, T. (2007). Oil palm. Oil Palm Research and Development Centre. Songkhla, Thailand: Faculty of Natural Resources, Prince of Songkla University. Chiarawipa, N. R., Thongna, N. K., & Sdoodee, N. S. (2021). Assessing impact of weather variability and changing climate on oil-palm yield in major growing regions of southern Thailand. Journal of Agrometeorology, 22(3), 274–284. https://doi.org/10.54386/jam.v22i3.189 Choueiry, G. (2022, October 25). Interpret log transformations in linear regression. https://quantifyinghealth.com/interpret-log-transformations-in-linear-regression/ Department of Agriculture. (n.d.). Durian Production in Southern Thailand (การผลิตทุเรียน ภาคใต้ตอนล่าง) . https://www.doa.go.th/oard8/wp-content/ uploads/2020/09/การผลิตทุเรียนภาคใต้ตอนล่างn.pdf Department of Agriculture Extension (DOAE). (2020). 3rd Fruit Development Strategy and Acton Plan (2022-2027). https://secreta.doae.go.th/?p=6588 De Silva, Y. K., Babel, M. S., Abatan, A. A., Khadka, D., & Shanmugasundaram, J. (2023). Evaluation of ENSO in CMIP5 and CMIP6 models and its significance in the rainfall in Northeast Thailand. Theoretical and Applied Climatology, 154(3–4), 881–906. https://doi.org/10.1007/s00704-023-04585-z Dhakal, S., Sedhain, G. K., & Dhakal, S. C. (2016). Climate change impact and adaptation practices in agriculture: a case study of Rautahat District, Nepal. Climate, 4(4), 63. https://doi.org/10.3390/cli4040063 Durian Harvests. (2021). Durian, The King of Fruits. https://www.durianharvests.com/durian/ Elbehri, A. (2015). Climate change and food systems: global assessments and implications for food security and trade. Food and Agriculture Organization of the United Nations (FAO). Endo, N., Matsumoto, J., & Lwin, T. (2009). Trends in Precipitation Extremes over Southeast Asia. SOLA, 5, 168–171. https://doi.org/10.2151/sola.2009-043 Feng, S., Hu, Q., & Qian, W. (2004). Quality control of daily meteorological data in China, 1951–2000: a new dataset. International Journal of Climatology, 24(7), 853–870. https://doi.org/10.1002/joc.1047 Fleiss, S., Hill, J. K., McClean, C., Lucey, J. M., & Reynolds, G. (2017). Potential impacts of climate change on oil palm cultivation. A science-for-policy paper by the SEnSOR Programme, 1-17. Food and Agriculture Organization of the United Nations (FAO). (2014). The State of Food Insecurity in the World 2014. Rome. Geo-Informatics and Space Technology Development Agency (GISDA). (2564, November 11). El Niño and La Niña phenomena that influence the global climate. https://www.gistda.or.th/news_view.php?n_id=3312&lang=TH Ghosh, B. C., Eyasmin, F., & Adeleye, B. N. (2023). Climate change and agriculture nexus in Bangladesh: Evidence from ARDL and ECM techniques. PLOS Climate, 2(7), e0000244. https://doi.org/10.1371/journal.pclm.0000244 Gomes, F. P., & Prado, C. H. (2007). Ecophysiology of coconut palm under water stress. Brazilian Journal of Plant Physiology, 19(4), 377–391. https://doi.org/10.1590/s1677-04202007000400008 Griscom, B. W., Adams, J., Ellis, P. W., Houghton, R. A., Lomax, G., Miteva, D. A., Schlesinger, W. H., Shoch, D., Siikamäki, J. V., Smith, P., Woodbury, P., Zganjar, C., Blackman, A., Campari, J., Conant, R. T., Delgado, C., Elias, P., Gopalakrishna, T., Hamsik, M. R., . . . Fargione, J. (2017). Natural climate solutions. 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Agronomy, 11(11), 2189. https://doi.org/10.3390/agronomy11112189 Kirtphaiboon, S., Wongwises, P., Limsakul, A., Sooktawee, S., & Humphries, U. (2014). Rainfall Variability over Thailand Related to the El Nino-Southern Oscillation (ENSO). J Sustain Energy Environ, 5(2), 37-42. Kozai, N., Higuchi, H., Tongtao, S., & Ogata, T. (2014). Low night temperature inhibits fertilization in 'Monthong' durian (Durio zibethinus Murr.). Tropical Agriculture and Development, 58(3), 102-108. Land Development Department. (n.d.). Land Resources of Southern Thailand. http://osl101.ldd.go.th/soilgr_man/south/gen_south.htm Lesk, C., Anderson, W., Rigden, A., Coast, O., Jägermeyr, J., McDermid, S., Davis, K. F., & Konar, M. (2022). Compound heat and moisture extreme impacts on global crop yields under climate change. Nature Reviews. Earth & Environment, 3(12), 872–889. https://doi.org/10.1038/s43017-022-00368-8 L'Heureux, M. (2014, May 5). What is the El Niño–Southern Oscillation (ENSO) in a nutshell? [Blog post]. In The ENSO Blog. NOAA. https://www.climate.gov/news-features/blogs/enso/what-el-ni%C3%B1o%E2%80%93southern-oscillation-enso-nutshell Libretexts. (2022, April 23). 16.2: Log Transformations. Statistics LibreTexts. https://stats.libretexts.org/Bookshelves/Introductory_Statistics/Introductory_Statistics_(Lane)/16%3A_Transformations/16.02%3A_Log_Transformations Limsakul, A., & Singhruck, P. (2016). Long-term trends and variability of total and extreme precipitation in Thailand. Atmospheric Research, 169, 301-317. https://doi.org/10.1016/j.atmosres.2015.10.015 Limsakul, A. (2019). Impacts of El Niño-Southern Oscillation (ENSO) on rice production in Thailand during 1961-2016. Environment and Natural Resources Journal, 17(4), 30-42. https://doi.org/10.32526/ennrj.17.4.2019.29 Matthews, R. B., Horie, T., Kropff, M. J., Bachelet, D., Centeno, H. G., Shin, J. C., . & Lee, M. H. (1995). A regional evaluation of the effect of future climate change on rice production in Asia. 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Multivariate ENSO Index Version 2 (MEI.v2). https://psl.noaa.gov/enso/mei/ Nuwarapaksha, T., Udumann, S., Dissanayaka, D., Dissanayake, D., & Atapattu, A. J. (2022). Coconut based multiple cropping systems: An analytical review in Sri Lankan coconut cultivations. Circular Agricultural Systems, 2(1), 1–7. https://doi.org/10.48130/cas-2022-0008 Oettli, P., Behera, S. K., & Yamagata, T. (2018). Climate based predictability of oil palm tree yield in Malaysia. Scientific Reports, 8(1). https://doi.org/10.1038/s41598-018-20298-0 Office of Agricultural Economics. (2023). Agricultural production of Southern Thailand. https://mis-app.oae.go.th/area/ภูมิภาคทางการ/ภาคใต้ Ounlert, P., & Sdoodee, S. (2015). The effects of climatic variability on mangosteen flowering date in southern and eastern of Thailand. Research Journal of Applied Sciences, Engineering and Technology, 11(6), 617–622. https://doi.org/10.19026/rjaset.11.2021 Petersen, M. A. (2009). 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International Letters of Natural Sciences, 49, 63–68. https://doi.org/10.18052/www.scipress.com/ilns.49.63 Trivej, P., Stevens, B., & Phansri, W. (2017). THE ONSET AND WITHDRAWAL OF THE RAINY SEASON IN EASTERN THAILAND WITH REGARD TO THE FLOWERING OF MANGOSTEENS AND DURIANS. Acta Geobalcanica, 3(1), 7–16. https://doi.org/10.18509/agb.2017.01 United Nations. (n.d.). What Is Climate Change? https://www.un.org/en/climatechange/what-is-climate-change United Nations Framework Convention on Climate Change (UNFCCC). (2021). Sustainable land and water management, including integrated watershed management strategies, to ensure food security. FCC/SB/2021/3. Agenda Item 8 – Koronivia Joint Work on Agriculture. Unjan, R., Nissapa, A., & Chiarawipa, R. (2017). Climatic considerations which support the choice between natural rubber and oil palm in Nakhon Si Thammarat, southern Thailand. Kasetsart Journal of Social Sciences, 38(3), 273–281. https://doi.org/10.1016/j.kjss.2016.07.006 Wangkiat, P. 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Economic structure of the South from the past to the present and the future after COVID-19. Bank of Thailand. https://www.bot.or.th/th/research-and-publications/articles-and-publications/articles/regional-articles/reg-article-2023-07.html Figure Reference Coconut Plants [Photograph]. (n.d.). OkNation. https://media.oknation.net/uploads/201707/01/14563e1a3.jpg Coconut Flower [Photograph]. (2015). Cocofina Coconut. https://cocofinacoconut.wordpress.com/2015/07/15/what-is-a-coconut-flower/ Coconut Fruits [Photograph]. (2019). MGR Online. https://mgronline.com/south/detail/9620000111427 Durian Plant [Photograph]. (n.d.). Teedin108. https://www.teedin108.com/public/photo/original/20230923142716_245806650e9354b845c.jpg Durian Flowers [Photograph]. (n.d.). BCG: NSTDA. https://www.bcg.in.th/wp-content/uploads/2023/03/Ranong-governor-promote-production-durian-04.jpg Durian Fruits and Plant [Photograph]. (n.d.). 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Agricultural Data – Output, Farmign Area, and Prices. [Data set]. Agricultural Data Service Center. Thai Meteorological Department. Meteorological Data [Data set]. Retrieved December 4, 2023, from https://data-service.tmd.go.th/; G0111266021; https://nccur.lib.nccu.edu.tw//handle/140.119/152679; https://nccur.lib.nccu.edu.tw/bitstream/140.119/152679/1/602101.pdf

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