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人工心脏输出流量和压力的神经网络估算法 被引量:5
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作者 封志刚 曾培 +3 位作者 茹伟民 袁海宇 李岚 钱坤喜 《中国生物医学工程学报》 CAS CSCD 北大核心 2002年第6期568-572,共5页
人工心脏的输出流量和压力是血泵设计及运行的重要特性参数 ,其测量精度和方法直接关系到人工心脏在动物实验及临床中的实际应用效果。本文提出了一种新的测量方法 ,即用神经网络从叶轮式人工心脏电机驱动参数换算血泵的流量和压力。与... 人工心脏的输出流量和压力是血泵设计及运行的重要特性参数 ,其测量精度和方法直接关系到人工心脏在动物实验及临床中的实际应用效果。本文提出了一种新的测量方法 ,即用神经网络从叶轮式人工心脏电机驱动参数换算血泵的流量和压力。与传统的测量方法相比 ,本方法具有如下特点 :(1)无创性 ,不会对血液造成破坏 ,同时减少了感染机会。 (2 )结构简单 ,省去了流量计和压力计 ,便于人工心脏完全植入体内。 展开更多
关键词 输出流量 压力 神经网络估算法 人工心脏 血泵 人工神经网络 叶轮式人工心脏
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Prediction of resilient modulus for subgrade soils based on ANN approach 被引量:12
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作者 ZHANG Jun-hui HU Jian-kun +2 位作者 PENG Jun-hui FAN Hai-shan ZHOU Chao 《Journal of Central South University》 SCIE EI CAS CSCD 2021年第3期898-910,共13页
The resilient modulus(MR)of subgrade soils is usually used to characterize the stiffness of subgrade and is a crucial parameter in pavement design.In order to determine the resilient modulus of compacted subgrade soil... The resilient modulus(MR)of subgrade soils is usually used to characterize the stiffness of subgrade and is a crucial parameter in pavement design.In order to determine the resilient modulus of compacted subgrade soils quickly and accurately,an optimized artificial neural network(ANN)approach based on the multi-population genetic algorithm(MPGA)was proposed in this study.The MPGA overcomes the problems of the traditional ANN such as low efficiency,local optimum and over-fitting.The developed optimized ANN method consists of ten input variables,twenty-one hidden neurons,and one output variable.The physical properties(liquid limit,plastic limit,plasticity index,0.075 mm passing percentage,maximum dry density,optimum moisture content),state variables(degree of compaction,moisture content)and stress variables(confining pressure,deviatoric stress)of subgrade soils were selected as input variables.The MR was directly used as the output variable.Then,adopting a large amount of experimental data from existing literature,the developed optimized ANN method was compared with the existing representative estimation methods.The results show that the developed optimized ANN method has the advantages of fast speed,strong generalization ability and good accuracy in MR estimation. 展开更多
关键词 resilient modulus subgrade soils artificial neural network multi-population genetic algorithm prediction method
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