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Yue, M., Qu, L., Zhou, S., Wu, D., Chen, Z., & Wen, H. (2024). Dynamic response characteristics of shaking table model tests on the gabion reinforced retaining wall slope under seismic action. Geotextiles and Geomembranes, 52(2), 167-183.YueM., QuL., ZhouS., WuD., ChenZ. & WenH. (2024). Dynamic response characteristics of shaking table model tests on the gabion reinforced retaining wall slope under seismic action. Geotextiles and Geomembranes, 52(2), 167-183.Search in Google Scholar
Nakazawa, H., Hara, T., Suetsugu, D., Nishi, T., Kuribayashi, K., Miyoshi, K., & Shimomura, S. (2018). Experimental evaluation on earthquake-resistance of road retaining wall using gabion. Journal of Disaster Research, 13(5), 897-916.NakazawaH., HaraT., SuetsuguD., NishiT., KuribayashiK., MiyoshiK. & ShimomuraS. (2018). Experimental evaluation on earthquake-resistance of road retaining wall using gabion. Journal of Disaster Research, 13(5), 897-916.Search in Google Scholar
Qin, C., Lai, T., Wu, H., Yang, Z., Ma, Y., & Pang, J. (2024, June). Study on Dynamic Characteristics of Multistage Lattice Reinforced Soil Retaining Wall under Cyclic Load. In 2024 8th International Conference on Civil Architecture and Structural Engineering (ICCASE 2024) (pp. 315-320). Atlantis Press.QinC., LaiT., WuH., YangZ., MaY. & PangJ. (2024, June). Study on Dynamic Characteristics of Multistage Lattice Reinforced Soil Retaining Wall under Cyclic Load. In 2024 8th International Conference on Civil Architecture and Structural Engineering (ICCASE 2024) (pp. 315-320). Atlantis Press.Search in Google Scholar
Mummadisingh, J. V., & Sengupta, A. (2023, April). Study of the dynamic performance of a gabion wall. In Structures (Vol. 50, pp. 576-589). Elsevier.MummadisinghJ. V. & SenguptaA. (2023, April). Study of the dynamic performance of a gabion wall. In Structures (Vol. 50, pp. 576-589). Elsevier.Search in Google Scholar
Miščević, P., Vlastelica, G., & Babić, M. (2018). Design of reinforced gabion wall: example of retaining wall for” Vidikovac” rest area on the island of Brac. e-Zbornik: Electronic Collection of Papers of the Faculty of Civil Engineering, (15).MiščevićP., VlastelicaG. & BabićM. (2018). Design of reinforced gabion wall: example of retaining wall for” Vidikovac” rest area on the island of Brac. e-Zbornik: Electronic Collection of Papers of the Faculty of Civil Engineering, (15).Search in Google Scholar
Uray, E. (2022). Gabion structures and retaining walls design criteria. Advanced Engineering Science, 2, 127-134.UrayE. (2022). Gabion structures and retaining walls design criteria. Advanced Engineering Science, 2, 127-134.Search in Google Scholar
Hong, B., Shao, B., Wang, B., Zhao, J., Qian, J., Guo, J., ... & Zhu, B. (2023). Using the meteorological early warning model to improve the prediction accuracy of water damage geological disasters around pipelines in mountainous areas. Science of The Total Environment, 889, 164334.HongB., ShaoB., WangB., ZhaoJ., QianJ., GuoJ. ... & ZhuB. (2023). Using the meteorological early warning model to improve the prediction accuracy of water damage geological disasters around pipelines in mountainous areas. Science of The Total Environment, 889, 164334.Search in Google Scholar
Bayati Khatibi, M., Hassanpour, S., & Fezizadeh, B. (2024). Assessing the risk of gas pipelines passing through mountainous areas and investigating their threat from landslides using hybrid-fuzzy algorithms. Quantitative Geomorphological Research, 12(4), 128-149.Bayati KhatibiM., HassanpourS. & FezizadehB. (2024). Assessing the risk of gas pipelines passing through mountainous areas and investigating their threat from landslides using hybrid-fuzzy algorithms. Quantitative Geomorphological Research, 12(4), 128-149.Search in Google Scholar
Hou, W., Gartner, J., Baumgard, A., Gauthier, D., & Otten, T. (2024, September). Practical Solutions for Mountainous Pipeline Construction: Mechanically Stabilized Earth Retaining Walls on a Western Canadian Transmission Pipeline Project. In International Pipeline Conference (Vol. 88537, p. V001T02A012). American Society of Mechanical Engineers.HouW., GartnerJ., BaumgardA., GauthierD. & OttenT. (2024, September). Practical Solutions for Mountainous Pipeline Construction: Mechanically Stabilized Earth Retaining Walls on a Western Canadian Transmission Pipeline Project. In International Pipeline Conference (Vol. 88537, p. V001T02A012). American Society of Mechanical Engineers.Search in Google Scholar
Yan, Y., Xiong, G., Zhou, J., Wang, R., Huang, W., Yang, M., ... & Geng, D. (2022). A whole process risk management system for the monitoring and early warning of slope hazards affecting gas and oil pipelines. Frontiers in Earth Science, 9, 812527.YanY., XiongG., ZhouJ., WangR., HuangW., YangM. ... & GengD. (2022). A whole process risk management system for the monitoring and early warning of slope hazards affecting gas and oil pipelines. Frontiers in Earth Science, 9, 812527.Search in Google Scholar
Wang, B., Li, Z., Zhu, B., Wang, Z., Guo, J., Li, C., ... & Qian, J. (2024). Integrated risk assessment of mountainous long-distance oil and gas pipelines based on multisource spatial data. ACS omega, 9(28), 30492-30507.WangB., LiZ., ZhuB., WangZ., GuoJ., LiC. ... & QianJ. (2024). Integrated risk assessment of mountainous long-distance oil and gas pipelines based on multisource spatial data. ACS omega, 9(28), 30492-30507.Search in Google Scholar
Zhang, J., Zheng, H., He, W., & Huang, W. (2020). West-east gas pipeline project. Frontiers of Engineering Management, 7, 163-167.ZhangJ., ZhengH., HeW. & HuangW. (2020). West-east gas pipeline project. Frontiers of Engineering Management, 7, 163-167.Search in Google Scholar
Yongsheng, Z. O. U. (2021). Intelligent construction of mountainous oil and gas pipeline and its prospect. Oil & Gas Storage and Transportation, 40(1), 1-6.YongshengZ. O. U. (2021). Intelligent construction of mountainous oil and gas pipeline and its prospect. Oil & Gas Storage and Transportation, 40(1), 1-6.Search in Google Scholar
Yu, C., Zhang, K., Chen, L., & Mao, S. (2022). Brief introduction of geological disaster risk management and control measures for oil pipelines. Scientific Journal of Intelligent Systems Research Volume, 4(5).YuC., ZhangK., ChenL. & MaoS. (2022). Brief introduction of geological disaster risk management and control measures for oil pipelines. Scientific Journal of Intelligent Systems Research Volume, 4(5).Search in Google Scholar
Yan, Y., Yang, D. S., Geng, D. X., Hu, S., Wang, Z. A., Hu, W., & Yin, S. Y. (2019). Disaster reduction stick equipment: A method for monitoring and early warning of pipeline-landslide hazards. Journal of Mountain Science, 16(12), 2687-2700.YanY., YangD. S., GengD. X., HuS., WangZ. A., HuW. & YinS. Y. (2019). Disaster reduction stick equipment: A method for monitoring and early warning of pipeline-landslide hazards. Journal of Mountain Science, 16(12), 2687-2700.Search in Google Scholar
Robles Robles, D., & Castillo Martínez, E. (2017, July). Case of Geotechnical Instrumentation of Pipelines in Unstable Zones: Real Time Readings and its Development in Uncommunicated Zones. In ASME International Pipeline Geotechnical Conference (Vol. 57625, p. V001T03A007). American Society of Mechanical Engineers.Robles RoblesD. & Castillo MartínezE. (2017, July). Case of Geotechnical Instrumentation of Pipelines in Unstable Zones: Real Time Readings and its Development in Uncommunicated Zones. In ASME International Pipeline Geotechnical Conference (Vol. 57625, p. V001T03A007). American Society of Mechanical Engineers.Search in Google Scholar
Christopulos, D. (2021). Mountain valley pipeline: A case study in local resistance and mobilization. Pipeline Pedagogy: Teaching About Energy and Environmental Justice Contestations, 107-139.ChristopulosD. (2021). Mountain valley pipeline: A case study in local resistance and mobilization. Pipeline Pedagogy: Teaching About Energy and Environmental Justice Contestations, 107-139.Search in Google Scholar
Bai, M., Du, Y., Chen, Y., Xing, Y., & Zhao, P. (2017). Risk assessment of long gas and oil pipeline projects inducing landslide disasters during construction. Journal of performance of constructed facilities, 31(5), 04017063.BaiM., DuY., ChenY., XingY. & ZhaoP. (2017). Risk assessment of long gas and oil pipeline projects inducing landslide disasters during construction. Journal of performance of constructed facilities, 31(5), 04017063.Search in Google Scholar
Wang, Y., Smith, J. V., & Nazem, M. (2021). Optimisation of a slope-stabilisation system combining gabion-faced geogrid-reinforced retaining wall with embedded piles. KSCE Journal of Civil Engineering, 25(12), 4535-4551.WangY., SmithJ. V. & NazemM. (2021). Optimisation of a slope-stabilisation system combining gabion-faced geogrid-reinforced retaining wall with embedded piles. KSCE Journal of Civil Engineering, 25(12), 4535-4551.Search in Google Scholar
Chikute, G. C., & Sonar, I. P. (2021). Gabion Wall: Eco-friendly and Cost-Efficient Retaining Wall. In Advances in Sustainable Construction Materials: Select Proceedings of ASCM 2020 (pp. 229-249). Singapore: Springer Singapore.ChikuteG. C. & SonarI. P. (2021). Gabion Wall: Eco-friendly and Cost-Efficient Retaining Wall. In Advances in Sustainable Construction Materials: Select Proceedings of ASCM 2020 (pp. 229-249). Singapore: Springer Singapore.Search in Google Scholar
Gao, L., Wang, N., Rao, F., & Yan, Z. (2021, October). Structural form and main technical requirements of Gabion retaining wall. In Journal of Physics: Conference Series (Vol. 2044, No. 1, p. 012172). IOP Publishing.GaoL., WangN., RaoF. & YanZ. (2021, October). Structural form and main technical requirements of Gabion retaining wall. In Journal of Physics: Conference Series (Vol. 2044, No. 1, p. 012172). IOP Publishing.Search in Google Scholar
Luo, H., Xie, Y., & Lv, J. (2019). Effectiveness of soil and water conservation associated with a natural gas pipeline construction project in China. Land Degradation & Development, 30(7), 768-776.LuoH., XieY. & LvJ. (2019). Effectiveness of soil and water conservation associated with a natural gas pipeline construction project in China. Land Degradation & Development, 30(7), 768-776.Search in Google Scholar
Cai, X., Zhang, S., Li, S., Xu, H., Huang, X., Zhu, C., & Liu, X. (2022). Dynamic Characteristics of Reinforced Soil Retaining Wall with Composite Gabion Based on Time Domain Identification Method. Sustainability, 14(23), 16321.CaiX., ZhangS., LiS., XuH., HuangX., ZhuC. & LiuX. (2022). Dynamic Characteristics of Reinforced Soil Retaining Wall with Composite Gabion Based on Time Domain Identification Method. Sustainability, 14(23), 16321.Search in Google Scholar
Wang, H., Chen, H., Wang, Y., Han, L., & Li, H. (2020). Reliability analysis for stability of the gravity retaining wall under mountain torrent. Systems Science & Control Engineering, 8(1), 434-440.WangH., ChenH., WangY., HanL. & LiH. (2020). Reliability analysis for stability of the gravity retaining wall under mountain torrent. Systems Science & Control Engineering, 8(1), 434-440.Search in Google Scholar
Dhamdhere, D. R., Rathi, V. R., & Kolase, P. K. (2018). Design and analysis of retaining wall. International Journal of Management, Technology and Engineering, 8(9), 1246-1263.DhamdhereD. R., RathiV. R. & KolaseP. K. (2018). Design and analysis of retaining wall. International Journal of Management, Technology and Engineering, 8(9), 1246-1263.Search in Google Scholar
Lobkina, V. A., & Gensiorovsky, Y. V. (2024). Landslide Activation during the Development of Mountainous Areas. Russian Journal of Pacific Geology, 18(3), 331-340.LobkinaV. A. & GensiorovskyY. V. (2024). Landslide Activation during the Development of Mountainous Areas. Russian Journal of Pacific Geology, 18(3), 331-340.Search in Google Scholar
Saikat Kuili, T S Aswathi & Ravi S. Jakka. (2024). Probabilistic assessment of the seismic stability of gravity retaining wall:Retaining and waterfront structure. Japanese Geotechnical Society Special Publication(15), 489-494.KuiliSaikat, AswathiT S & JakkaRavi S.. (2024). Probabilistic assessment of the seismic stability of gravity retaining wall:Retaining and waterfront structure. Japanese Geotechnical Society Special Publication(15), 489-494.Search in Google Scholar
Deng Tongfa, Zhang Junping, Li Shuai & Wang Yi. (2019). Anti-overturning stability coefficient of curved girder bridges considering seismic action. Journal of Vibroengineering(3), 710-725.TongfaDeng, JunpingZhang, ShuaiLi & YiWang. (2019). Anti-overturning stability coefficient of curved girder bridges considering seismic action. Journal of Vibroengineering(3), 710-725.Search in Google Scholar
Xiaotong Bian, Debao Chen, Feng Zou, Fangzhen Ge, Yuhui Zheng & Fuqiang Liu. (2025). Multitask particle swarm optimization algorithm leveraging variable chunking and local meta-knowledge transfer. Swarm and Evolutionary Computation 101823-101823.BianXiaotong, ChenDebao, ZouFeng, GeFangzhen, ZhengYuhui & LiuFuqiang. (2025). Multitask particle swarm optimization algorithm leveraging variable chunking and local meta-knowledge transfer. Swarm and Evolutionary Computation101823-101823.Search in Google Scholar