• Pattern recognition of support vector network with supervising learning is studied in this paper.

    研究监督学习支持向量网络的的模式识别

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  • Much of the work on digit recognition has been done in the neural network community, but more recently support vector machines have proven to be even better classifiers.

    大部分数字识别工作可以由神经网络来完成最近支持向量被证明可以在分类方面做得更好

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  • The prediction method of network delays based on support vector machine (SVM) was put forward.

    进而提出了基于支持向量(SVM)网络延时预测方法

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  • The features of gene expression are extracted by the wavelet multi-resolution analysis, the features are classified by the support vector machines and BP neural network methods.

    采用多分辩率分析方法提取基因表达特征利用支持向量BP神经网络方法进行分类。

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  • A new algorithm for modeling regression curve is put forward in the paper, it combines B-spline network with improved support vector regression.

    改进支持向量回归B -样条网络相结合,提出一种建立回归曲线模型算法

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  • A network traffic anomaly detection mechanism is presented based on support vector machine (SVM).

    提出基于支持向量机的网络流量异常检测方法。

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  • At the same time, we used relevance feedback and machine learning used in image retrieval. K-NN, BP neural network and support vector machine classifiers were used in experiments.

    同时本文机器学习相关反馈结合起来用于图像检索实验使用了K -NNBP神经网络支持向量分类器

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  • The paper presents a method of pose-varied face recognition based on neural network and hierarchical support vector machines.

    提出一种基于神经网络层次支持向量多姿态人脸识别方法

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  • That the support vector machine network is applied to recognize the nonlinear fluorescence spectrum of impurities of different concentrations in air is proposed.

    提出支持向量网络应用于不同浓度杂质气体非线性荧光光谱识别

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  • In this paper, a method for converting GPS height to normal one by means of support vector machine is proposed, and compared with the methods of neural network, polynomial fitting etc.

    结合GPS测量和水准测量资料,利用支持向量方法GPS高程进行了转换神经网络多项式合等拟合结果进行了比较,得出了一些有益结论。

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  • A support vector decision function ranking method (SVDFRM) is used to calculate the contribution of network behaviors features, and then important network behaviors features are extracted.

    利用支持向量决策函数排序(SVDFRM),通过支持决策向量函数得到网络行为特征贡献率并提取网络行为的重要特征。

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  • Support vector machine (SVM) and the neural network are both currently hot subject in the area of machine learning technology.

    支持向量神经网络目前关于机器学习技术研究热点

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  • Currently, the hottest method is neural network method and support vector machine method which also have the highest accuracy rate.

    目前研究最热的识别率最高的当属神经网络方法支持向量方法。

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  • Particle swarm optimization- support vector machine classification has slightly better result than self-organizing neural networks, but the complexity of network was increased.

    粒子优化支持向量分类效果但是增加网络复杂度

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  • The features of two methods, i. e. least square support vector machine (LSSVM) and generalized regression neural network (GRNN) are compared and analyzed.

    比较分析了最小二支持向量(LSSVM)广义回归神经网络GRNN)这两种方法特点

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  • The result shows that the model has higher prediction accuracy. (2)The autoregressive model, BP neural network model and support vector machine model are studied in the paper, respectively.

    分别对回归模型神经网络模型、支持向量模型进行研究,以我国人口增长率为例,对人口增长率进行预测

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  • A novel adaptive support vector regression neural network (SVR-NN) is proposed, which combines respectively merits of support vector machines and a neural network.

    一种新的自适应支持向量回归神经网络(SVR - NN)提出结合了分别支持向量神经网络优点

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  • The generalization error of Support Vector Machine is approximately equal to that of Probabilistic Neural Network. And Support Vector Machine is easier to use than Neural Networks.

    支持向量分类误差概率神经网络相近支持向量机的使用概率神经网络简单

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  • The self-organizing neural network classifier and particle swarm optimization-support vector machine were designed by author in this paper to use as classification method of motor imagery EEG.

    其中自组织神经网络分类粒子优化支持向量本文设计的两种运动想象EEG分类方法

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  • Machine learning methods, including Support Vector Machines and Artificial Neural Network, are applied to the development of the classification models for the selective COX-2 inhibitors in this paper.

    本文支持矢量学习机神经网络两种机器学习方法建立选择性氧化酶-2抑制剂活性预测模型以期选择性环氧化酶-2抑制剂药物的合成提供先导化合物。

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  • Machine learning methods, including Support Vector Machines and Artificial Neural Network, are applied to the development of the classification models for the selective COX-2 inhibitors in this paper.

    本文支持矢量学习机神经网络两种机器学习方法建立选择性氧化酶-2抑制剂活性预测模型以期选择性环氧化酶-2抑制剂药物的合成提供先导化合物。

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