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基于模糊形变模型的3D表面自适应重建 被引量:1
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作者 夏利民 谷士文 沈新权 《长沙铁道学院学报》 CSCD 1999年第4期1-5,共5页
结合模糊技术、形变模型和ACD方法提出了基于模糊形变模型的3D表面自适应重建方法.在模糊分割的基础上,引入了模型的模糊外力,在该模糊外力作用下模型能逼近任意复杂的物体表面;利用ACD方法使模型自适应地改变其拓扑结构;为了提高... 结合模糊技术、形变模型和ACD方法提出了基于模糊形变模型的3D表面自适应重建方法.在模糊分割的基础上,引入了模型的模糊外力,在该模糊外力作用下模型能逼近任意复杂的物体表面;利用ACD方法使模型自适应地改变其拓扑结构;为了提高表面重建的速度和鲁棒性,提出多尺度重建算法.实验结果表明该方法的有效性. 展开更多
关键词 3D 表面自适应重建 模糊形变模型 ACD
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Prediction of representative deformation modulus of longwall panel roof rock strata using Mamdani fuzzy system 被引量:7
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作者 Mohammad Rezaei Mostafa Asadizadeh +1 位作者 Abbas Majdi Mohammad Farouq Hossaini 《International Journal of Mining Science and Technology》 SCIE EI CSCD 2015年第1期23-30,共8页
Deformation modulus is the important parameter in stability analysis of tunnels, dams and mining struc- tures. In this paper, two predictive models including Mamdani fuzzy system (MFS) and multivariable regression a... Deformation modulus is the important parameter in stability analysis of tunnels, dams and mining struc- tures. In this paper, two predictive models including Mamdani fuzzy system (MFS) and multivariable regression analysis (MVRA) were developed to predict deformation modulus based on data obtained from dilatometer tests carried out in Bakhtiary dam site and additional data collected from longwall coal mines. Models inputs were considered to be rock quality designation, overburden height, weathering, unconfined compressive strength, bedding inclination to core axis, joint roughness coefficient and fill thickness. To control the models performance, calculating indices such as root mean square error (RMSE), variance account for (VAF) and determination coefficient (R^2) were used. The MFS results show the significant prediction accuracy along with high performance compared to MVRA results. Finally, the sensitivity analysis of MFS results shows that the most and the least effective parameters on deformation modulus are weatherin~ and overburden height, respectively. 展开更多
关键词 Deformation modulusDilatometer testMamdani fuzzy systemMultivariable regression analysis
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