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Asymptotic Properties of a Dynamic Neural System with Asymmetric Connection Weights 被引量:1
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作者 鄢克雨 钟守铭 杨金祥 《Journal of Electronic Science and Technology of China》 2005年第1期78-81,86,共5页
In this paper, based on new Lyapunov function, the asymptotic properties of the dynamic neural system with asymmetric connection weights are investigated. Since the dynamic neural system with asymmetric connection wei... In this paper, based on new Lyapunov function, the asymptotic properties of the dynamic neural system with asymmetric connection weights are investigated. Since the dynamic neural system with asymmetric connection weights is more general than that with symmetric ones, the new results are significant in both theory and applications. Specially the new result can cover the asymptotic stability results of linear systems as special cases. 展开更多
关键词 asymmetric connection weights global exponential stability neural networks
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Stability of a Class of Neural Networks with Asymmetric Connection Weights
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作者 Xiu-Zhi Gao Shou-Ming Zhong Bing-Tao Wang 《Journal of Electronic Science and Technology of China》 2008年第3期346-349,共4页
This paper derives some sufficient conditions for exponential stability for the equilibrium point by dividing the state variables of the system according to the characters of the neural networks. The new conditions ar... This paper derives some sufficient conditions for exponential stability for the equilibrium point by dividing the state variables of the system according to the characters of the neural networks. The new conditions are described by some blocks of the interconnection matrix. An example is given to demonstrate the effectiveness of the proposed theory. 展开更多
关键词 Asymmetric connection weights exponential stability Lyapunov functional neural networks
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Integrated assessment of sea water quality based on BP artificial neural network 被引量:3
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作者 李雪 刘长发 +1 位作者 王磊 邱文静 《Marine Science Bulletin》 CAS 2011年第2期62-71,共10页
In order to carry out an integrated assessment of sea water quality objectively, this paper based on the concept and principle of artificial neural network, generated appropriate training samples for BP artificial neu... In order to carry out an integrated assessment of sea water quality objectively, this paper based on the concept and principle of artificial neural network, generated appropriate training samples for BP artificial neural network model through the method of producing samples to the concentration of various pollution index of sea water quality from the viewpoint of threshold, established the BP artificial neural network model of sea water quality assessment using multi-layer neural network with error back-propagation algorithm. This model was used to assess water environment and obtain sea water quality categories of offshore area in Bohai Bay through calculating. The calculations shown that pollution index in river's wet season was higher than that in dry season from 2004 to 2007, and the pollution was particularly serious in 2005 and 2006, but a little better in 2007. The assessed results of cases shown that the model was reasonable in design and higher in generalization, meanwhile, it was common, objective and practical to sea water quality assessment. 展开更多
关键词 artificial neural network sea water quality training sample connection weight ASSESSMENT
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中国肉用西门塔尔牛场间遗传联系分析 被引量:3
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作者 周姵诺 蔡文涛 +7 位作者 陈燕 张路培 徐凌洋 高雪 高会江 王泽昭 朱波 李俊雅 《畜牧兽医学报》 CAS CSCD 北大核心 2021年第6期1563-1570,共8页
旨在加快中国肉用西门塔尔牛的遗传进展,实现全国范围内的联合育种。本研究利用全国38家育种场和公牛站在2000—2019年出生的3 991头肉用西门塔尔牛初生重性状,使用DMU软件对场间关联率进行计算。对各场站划分关联组,并比较单场和关联... 旨在加快中国肉用西门塔尔牛的遗传进展,实现全国范围内的联合育种。本研究利用全国38家育种场和公牛站在2000—2019年出生的3 991头肉用西门塔尔牛初生重性状,使用DMU软件对场间关联率进行计算。对各场站划分关联组,并比较单场和关联组内的遗传力和估计育种值(estimated breeding value, EBV)的预测准确性。结果表明,中国肉用西门塔尔牛全国平均关联率为1.91%,大部分场间关联率处于较低水平。依据关联率可划分出两个关联组,分别包括6个和8个场,组内平均关联率分别为11.23%和12.54%。对两个关联组分别进行单场和联合估计,单场估计初生重的遗传力范围为0.32~0.44,关联组1的初生重遗传力为0.47,关联组2的初生重遗传力为0.43。两个关联组单场估计EBV的平均准确性分别为0.47和0.45,联合估计EBV的平均准确性分别为0.61和0.56。联合估计较单场估计EBV的准确性有明显提高。依据关联率划分关联组进行联合育种有利于加快中国肉用西门塔尔牛的育种进程。为推进中国肉用西门塔尔牛的育种进程,应先形成区域性联合育种,再逐步加强遗传联系,形成全国范围内的遗传关联体系。 展开更多
关键词 中国肉用西门塔尔牛 关联率 初生重 联合育种
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加权有穷自动机的代数性质 被引量:3
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作者 张丽霞 《计算机工程与科学》 CSCD 北大核心 2014年第11期2186-2190,共5页
在加权有穷自动机理论基础上,利用强同态的概念,证明两个加权有穷自动机在计算能力上是等价的,并在加权有穷自动机的状态集上建立一种等价关系,得到加权有穷自动机的商自动机,证明加权有穷自动机与其商自动机在计算能力上也是等价的。... 在加权有穷自动机理论基础上,利用强同态的概念,证明两个加权有穷自动机在计算能力上是等价的,并在加权有穷自动机的状态集上建立一种等价关系,得到加权有穷自动机的商自动机,证明加权有穷自动机与其商自动机在计算能力上也是等价的。并通过引入加权有穷自动机的可交换性、分离性、(强)连通性及层的概念,讨论在(强)同态的条件下,两个加权有限状态机之间的可交换性、分离性、(强)连通性及层的关系。 展开更多
关键词 形式幂级数 加权有穷自动机 同态 强连通
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加权Coxeter群(_3,)的胞腔(英文) 被引量:1
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作者 米倩倩 时俭益 《华东师范大学学报(自然科学版)》 CAS CSCD 北大核心 2015年第1期27-41,共15页
仿射Coxeter群(_3,S)可以被看做仿射Coxeter群(D_4,S)在满足条件α(S)=S的某种群自同构α下的不动点集合,设是D_4的长度函数.本文明显地刻画了加权Coxeter群(_3,)的所有左胞腔.同时证明了:加权Coxeter群(D_4,)和(_3,)的所有左胞腔都是... 仿射Coxeter群(_3,S)可以被看做仿射Coxeter群(D_4,S)在满足条件α(S)=S的某种群自同构α下的不动点集合,设是D_4的长度函数.本文明显地刻画了加权Coxeter群(_3,)的所有左胞腔.同时证明了:加权Coxeter群(D_4,)和(_3,)的所有左胞腔都是左连通的,所有双边胞腔都是双边连通的. 展开更多
关键词 加权Coxeter群 拟分裂情形 胞腔 左连通性
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多复变量Hilbert空间上的复合算子族的拓扑结构
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作者 仝策中 于洋 张建 《河北工业大学学报》 CAS 2016年第1期51-56,共6页
将在算子范数拓扑的意义下,研究多复变量函数的Hilbert空间之间的有界加权复合算子族的拓扑连通性.利用类似的方法还将研究在Hilbert-Schmidt范数拓扑下的连通性.这些讨论与结论适用于多种多复变量函数空间,比如Hardy空间,Bergman空间Di... 将在算子范数拓扑的意义下,研究多复变量函数的Hilbert空间之间的有界加权复合算子族的拓扑连通性.利用类似的方法还将研究在Hilbert-Schmidt范数拓扑下的连通性.这些讨论与结论适用于多种多复变量函数空间,比如Hardy空间,Bergman空间Dirichlet空间之间的加权复合算子族的拓扑结构的研究. 展开更多
关键词 多复变量 HILBERT空间 加权复合算子 道路连通 算子范数 Hilbert-Schmidt范数
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加权复合算子从Bloch型空间到圆盘代数的拓扑结构
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作者 许丽葵 邓秀勤 刘军明 《广东工业大学学报》 CAS 2021年第3期62-64,共3页
设A为圆盘代数, u和φ是A上的解析函数,刻画了加权复合算子uCφ从Bloch型空间到圆盘代数的一些范数估计。同时还研究了加权复合算子空间的道路连通性,得知任意2个有界加权复合算子是道路连通的。
关键词 拓扑结构 加权复合算子 BLOCH型空间 圆盘代数 道路连通性
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Artificial Neural Network (ANN) and Regression Tree (CART) applications for the indirect estimation of unsaturated soil shear strength parameters 被引量:3
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作者 D.P. KANUNGO Shaifaly SHARMA Anindya PAIN 《Frontiers of Earth Science》 SCIE CAS CSCD 2014年第3期439-456,共18页
The shear strength parameters of soil (cohesion and angle of internal friction) are quite essential in solving many civil engineering problems. In order to determine these parameters, laboratory tests are used. The ... The shear strength parameters of soil (cohesion and angle of internal friction) are quite essential in solving many civil engineering problems. In order to determine these parameters, laboratory tests are used. The main objective of this work is to evaluate the potential of Artificial Neural Network (ANN) and Regression Tree (CART) techniques for the indirect estimation of these parameters. Four different models, considering different combinations of 6 inputs, such as gravel %, sand %, silt %, clay %, dry density, and plasticity index, were investigated to evaluate the degree of their effects on the prediction of shear parameters. A performance evaluation was carried out using Correlation Coefficient and Root Mean Squared Error measures. It was observed that for the prediction of friction angle, the performance of both the techniques is about the same. However, for the prediction of cohesion, the ANN technique performs better than the CART technique. It was further observed that the model considering all of the 6 input soil parameters is the most appropriate model for the prediction of shear parameters. Also, connection weight and bias analyses of the best neural network (i.e., 6/2/2) were attempted using Connec- tion Weight, Garson, and proposed Weight-bias approaches to characterize the influence of input variables on shear strength parameters. It was observed that the Connection Weight Approach provides the best overall methodology for accurately quantifying variable importance, and should be favored over the other approaches examined in this study. 展开更多
关键词 COHESION friction angle Artificial NeuralNetwork Regression Tree Connection weight weight-bias Approach
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Application of an interpretable artificial neural network to predict the interface strength of a near-surface mounted fiber-reinforced polymer to concrete joint 被引量:2
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作者 Miao SU Hui PENG Shao-fan LI 《Journal of Zhejiang University-Science A(Applied Physics & Engineering)》 SCIE EI CAS CSCD 2021年第6期427-440,共14页
Accurately estimating the interfacial bond capacity of the near-surface mounted(NSM)carbon fiber-reinforced polymer(CFRP)to concrete joint is a fundamental task in the strengthening and retrofit of existing reinforced... Accurately estimating the interfacial bond capacity of the near-surface mounted(NSM)carbon fiber-reinforced polymer(CFRP)to concrete joint is a fundamental task in the strengthening and retrofit of existing reinforced concrete(RC)structures.The machine learning(ML)approach may provide an alternative to the commonly used semi-empirical or semi-analytical methods.Therefore,in this work we have developed a predictive model based on an artificial neural network(ANN)approach,i.e.using a back propagation neural network(BPNN),to map the complex data pattern obtained from an NSM CFRP to concrete joint.It involves a set of nine material and geometric input parameters and one output value.Moreover,by employing the neural interpretation diagram(NID)technique,the BPNN model becomes interpretable,as the influence of each input variable on the model can be tracked and quantified based on the connection weights of the neural network.An extensive database including 163 pull-out testing samples,collected from the authors’research group and from published results in the literature,is used to train and verify the ANN.Our results show that the prediction given by the BPNN model agrees well with the experimental data and yields a coefficient of determination of 0.957 on the whole database.After removing one non-significant feature,the BPNN becomes even more computationally efficient and accurate.In addition,compared with the existed semi-analytical model,the ANN-based approach demonstrates a more accurate estimation.Therefore,the proposed ML method may be a promising alternative for predicting the bond strength of NSM CFRP to concrete joint for structural engineers. 展开更多
关键词 Fiber-reinforced polymer(FRP) Bond strength Machine learning(ML) Neural interpretation diagram(NID) Regression Feature importance Connection weights approach
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