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Rainfall erosion of mountain environment and people flow planning of Leshan giant Buddha site based on big data GIS

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Wybrane pełne teksty z tego czasopisma
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Based on the big data GIS system, this paper first analyzes the methods and research results of the visualization of soil and water conservation level data at home and abroad. And for the proposed visual protection plan for land and water resources, a relatively excellent data architecture and the latest persistence plan have been designed. Based on this point, this paper investigates the cause of rainfall erosion and fluctuation in the mountain environment of S city and studies and determines the important technical points of water and soil conservation data images. Based on the results of this kind of research, the article further analyzes the temporal and spatial characteristics of the data and, based on the RUSLE model, conducts a directional consideration of the distribution characteristics of environmental rainfall erosion in mountainous environments: that is, comprehensively examines the impact of rainfall erosion in mountainous environments from both natural and social factors. The main factor of the pattern. Using multi-linear regression equations, combined with environmental variables and bioclimatic variables, the spatial distribution of land in Q mountainous areas is predicted under the background of global change. Finally, the article conducted an in-depth study on the people flow planning of the Leshan Giant Buddha Scenic Spot, introduced the construction of the Leshan Giant Buddha Scenic Spot Project Network, and adopted comprehensive technical solutions such as "portrait photography reconnaissance surveillance camera + online photography AI portrait recognition technology" to build the number of passengers identify and plan the design of the system and elaborate on the system's functions, such as visitor statistics, hotspot analysis, travel route analysis, video tracking, and data display. The article applies the research results of rainfall erosion in mountain environment based on big data GIS to the research on the people flow planning of Leshan Giant Buddha, which promotes the rapid development of scenic spots.
Czasopismo
Rocznik
Strony
1461--1474
Opis fizyczny
Bibliogr. 23 poz., rys., tab.
Twórcy
autor
  • School of Urban Design, Wuhan University, Wuhan 430000, Hubei, China
autor
  • School of Urban Design, Wuhan University, Wuhan 430000, Hubei, China
Bibliografia
  • 1. Alessio P (2019) Spatial variability of saturated hydraulic conductivity and measurement-based intensity-duration thresholds for slope stability, Santa Ynez Valley, CA. Geomorphology 342:103–116
  • 2. Bloom AA, Williams M (2015) Constraining ecosystem carbon dynamics in a data-limited world: integrating ecological “common sense” in a model–data fusion framework. Biogeosciences 12(5):1299–1315
  • 3. Feng SJ, Chen ZW, Chen HX, Zheng QT, Liu R (2018) Slope stability of landfills considering leachate recirculation using vertical wells. Eng Geol 241:76–85
  • 4. Hao W, Zhang P (2019) Numerical simulation of pore water pressure variation of building foundation in shallow coastal waters. J Coast Res 93:257–263
  • 5. Kamchoom V, Leung AK (2018) Hydro-mechanical reinforcements of live poles to slope stability. Soils Found Tokyo 58(6):1423–1434
  • 6. Kanoh H (2007) Dynamic route planning for car navigation systems using virus genetic algorithms. Int J Knowl-based Intell Eng Syst 11(1):65–78
  • 7. Karlis K, Jean-Frank W, Tomas S, Philip B (2018) Physically based hydrogeological and slope stability modeling of the Turaida castle mound. Landslides 15:2267–2278
  • 8. Khanna R, Datta M, Ramana GV (2019) Influence of core thickness on stability of downstream slope of earth and rockfill dams under end-of-construction and steady-state-seepage: a comparison. Int J Geotech Eng 13(1–2):25–31
  • 9. Lan H, Wang D, He S, Fang Y, Chen W, Zhao P et al (2020) Experimental study on the effects of tree planting on slope stability. Landslides 17(4):1021–1035
  • 10. Li J, He X (2019) Simulation for frost heaving damage of concrete lining channels by using XFEM. J Coast Res 93:264–273
  • 11. Ma XJ, Wang W (2015) Composite model for dynamic pore water pressure developing process of soft soil under cyclic loading. J Mech Eng Res Develop 38(2):12–17
  • 12. Mulyono A, Subardja A, Ekasari I, Lailati M, Sudirja R, Ningrum W (2018) The hydromechanics of vegetation for slope stabilization. Iop Conference 118:012038
  • 13. Pan Z, Zhang P, Luo Z, Yang H (2020) Research on WSN low Energy routing algorithm based on geographic location. Comput Simul 37(6):305–309
  • 14. Reddy KR, Kumar G, Giri RK (2018) System effects on bioreactor landfill performance based on coupled hydro-bio-mechanical modeling. Pract Period Hazard Toxic Radioact Waste Manag 22(1):04017024.1-04017024.15
  • 15. Takashi O, Sumio M, Otto LJ, Shiho A, Kazutoki A (2018) The response of pore water pressure to snow accumulation on a lowpermeability clay landslide. Eng Geol 242:130–141
  • 16. Thiéblement D, Tegyey M (1994) Une discrimination géochimique des roches différenciées témoins de la diversité d’origine et de la situation tectonique des magmas calcoalcalins. CR Acad Paris 11(319 série):87–94
  • 17. Thomas SJ, Chevallier LP, Gresse PG, Harmer RE, Eglington BM, Armstrong RA, De Beer CH (2002) Precambrian evolution of the sirwa window, anti-atlas orogen, morocco. Precambrian Res 118:1–57
  • 18. Thomas RJ, Fekkak A, Ennih N, Errami E, Loughlin SC, Gresse PG, Chevallier LP, Liégeois JP (2004) A new lithostratigraphic framework for the Anti-Atlas Orogen, Morocco. J Afr Earth Sci 39:217–226
  • 19. Touil A, Hafid A, Moutte J, El Boukhari A (2008) Petrology and geochemistry of the neoproterozoic siroua granitoids (central antiatlas, morocco): evolution from subduction-related to within-plate magmatism. Geol Soci London Spec Publ 297:265–283
  • 20. Touil A (1999) Pétrographie, géochimie et contexte de mise en place des granitoïdes du secteur ouest du massif du Siroua (Anti-Atlas Central, Maroc). Ph.D. Thesis, University Cadi Ayad, Marrakech
  • 21. Toummite A, Liégeois JP, Gasquet D, Bruguier O, Beraaouz EH, Ikenne M (2012) Field, geochemistry and Sr-Nd isotopes of the pan-african granitoids from the tifnoute valley (sirwa, anti-atlas, morocco): a post-collisional event in a metacratonic setting. Mineral Petrol 2:136–147
  • 22. Triantafyllou A, Berger J, Baele JM, Diot H, Ennih N, Plissart G, Monnier C (2016) The tachakoucht–iriri–tourtit arc complex (moroccan anti-atlas): neoproterozoic records of polyphased subduction-accretion dynamics during the pan-african orogeny. J Geodyn 96:81–103
  • 23. Villeneuve M, Cornée JJ (1994) Evolution paleogeographique de la marge nord-ouest de l’Afrique du Cambrien à la fin du Carbonifère (du Maroc au Liberia). Can J Earth Sei 28:1121–1130
Uwagi
Opracowanie rekordu ze środków MEiN, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2024).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-78cdc597-e031-4efe-86a4-e9c50feea5bf
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