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SSSvm, 半监督学习算法,文档在sourceforge上下载-SSSvm, semi-supervised learning algorithm, the document in the sourceforge download
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sssvm相关的文档,也可以在sourceforge上下载-sssvm related documents, can also be downloaded at sourceforge
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wekaUT是 university texas austin 开发的基于weka的半指导学习(semi supervised learning)的分类器-university texas austin are wekaUT the development of guidance based on semi-weka study (semi supervised learning) classifier
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CoForest是一种半监督算法,处理集成学习及利用大量未标记数据得到更优越性能的假设。-CoForest is a semi-supervised algorithm, which exploits the power of ensemble learning and large amount of unlabeled data available to produce hypothesis with better performance.
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包含8篇半监督学习方面的中文文献,关于半监督学习的中文文献并不是很多,我把我找到的一些文章贡献一下。分别为:“半监督学习综述”“有关半监督学习的问题及研究”“基于半监督学习的网络流量分析”“基于核策略的半监督学习方法”“一种基于半监督学习的多模态WEB查询精华方法”“半监督学习机制下的说话人辨认算法”“半监督学习在入侵系统中的应用”“基于半监督学习的眉毛图像分割方法”-Includes eight semi-supervised learning of Chinese literature on
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利用基于图的分类方法, 半监督学习 ,分类软件。-SemiL is efficient software for solving large scale semi-supervised learning or transductive inference problems using graph based approaches.
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MissSVM是一揽子解决多实例使用半监督支持向量机的学习问题。MissSVM目的是显示,如果假设IID实例,多实例学习可以作为一个半监督学习的特殊情况来看,可能会合并成半的领域和多实例学习领域监督学习。 因此,未来的多实例学习研究应只承担IID袋,避免IID实例假设。 -MissSVM package solution is to use multi-instance semi-supervised support vector machine learning problems. MissS
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关于metric learning的综述,涉及到许多的知识:SVM、kernel、SDP等-This paper surveys the field of distance
metric learning from a principle perspective, and includes a broad selection of recent work. In particular, distance metric learning is reviewed under different
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义了一个欧氏距离和监督信息相混合的新的最近邻计算函数,从而将K一均值算法很好地应用于半
监督聚类问题。针对K一均值算法初始质心敏感的缺陷,用粒子群算法的搜索空间模拟聚类的欧氏空间,迭代搜
索找到较优的聚类质心,同时提出动态管理种群的策略以提高粒子群算法搜索效率。算法在UCI的多个数据集
上测试都得到了较好的聚类准确率。-Righteousness of a Euclidean distance and supervision of a mixture of new nearest n
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机器学习中半监督学习算法,最近研究比较热的关于图的算法的综述-semi-supervised learning literature survey
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Naive bayes classifer的具体实现,使用多模态事件模型表示,提供EM算法用于半监督和无监督学习,最大似然估计用于有监督学习-The Naive bayes classifer implementation, using a multi-modal event model EM algorithm for semi-supervised and unsupervised learning, maximum likelihood estimation for supervised
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最新极限学习机程序,绝对可以使用,请大家下线载-G. Huang, S. Song, J. N. D. Gupta, and C. Wu, “Semi-supervised and Unsupervised Extreme Learning Machines,” (in press) IEEE Transactions on Cybernetics, 2014.
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半监督核无监督极限学习机,用于半监督核无监督学习,比传统方法速度略快,且可以直接应用多分类问题-A semi-supervised nuclear unsupervised extreme learning machine, used for a semi-supervised kernel unsupervised learning, slightly faster than the traditional methods, and can direct application classif
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多源决策融合semi-supervised-multi classification learning machine for decision fusion in semi-supervised learning
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基于师生模型实现半监督学习,百万级数据级(Semi supervised learning based on teacher-student model, million data level)
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