• The first approach is a simple Map-Reduce-enabled Naive Bayes classifier.

    第一种方法使用简单的支持Map - Reduce的Naive Bayes分类器。

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  • Bayes classifier model is a powerful tool for classifying attack types in intrusion detection.

    贝叶斯分类模型入侵检测用于攻击类型分类有力工具

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  • Experimental results show that Bayes classifier is suitable for the transformer fault diagnosis.

    实验表明提出的选择性叶斯分类适于变压器故障诊断。

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  • Absrtact: An augmented naive Bayes classifier of Bayes classifier family is studied in this paper.

    摘要文中研究叶斯分类家族中的一种扩展朴素贝叶斯分类器。

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  • In this paper, we investigate enhancement of naive Bayes classifier using feature weighting technique.

    该文利用特征加权技术来增强朴素贝叶斯分类器

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  • This paper presents an efficient automatic categorization system for Chinese journals based on Bayes classifier.

    本文设计了一个有效基于贝叶斯分类器的中文期刊自动分类系统

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  • So a new Bayesian model mixed tree augmented Naive Bayes classifier(MTANC) based on the rough set theory is presented.

    因此提出了基于粗糙理论混合增广朴素叶斯分类模型MTANC)。

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  • This paper takes Naive Bayes Classifier as an illustration to describe how to construct a prediction module in detail.

    文章朴素叶斯算法详细描述性能预测模块构建过程。

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  • TAN(tree augmented Nave Bayes) takes the Nave Bayes classifier and adds edges to it, it is efficient extend of Nave Bayes.

    扩展型朴素叶斯TAN分类器放松了朴素贝叶斯的属性独立性假设,朴素贝叶斯分类器的有效改进。

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  • In this paper, we investigate enhancement to naive Bayes classifier using feature weighting technique based on rough set theory.

    本文基于粗糙理论探索特征加权技术朴素叶斯分类器的改进

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  • TAN classifier extends the structure of Naive Bayes classifier by adding augmenting arcs that obey certain structural restrictions.

    TAN分类器按照一定结构限制通过添加扩展的方式扩展朴素贝叶斯分类器的结构

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  • The algorithm of discrete Bayes classifier is proposed. Then, formulas for estimating classifying error of Bayes classifier are deduced.

    讨论了离散叶斯分类算法之后推导了离散贝叶斯分类器分类误差估算公式

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  • This paper USES the improved K-means (IKM) algorithm to process the missing data and thus improve the precision of the Naive Bayes classifier.

    本文利用改进K -均值算法缺失数据进行处理,提高朴素贝叶斯分类精确度

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  • In designing web Classifier, this thesis makes use of Vector Space Model to represent the web text, which improves the performance of Bayes Classifier.

    文本分类设计中,传统信息检索空间向量模型改进了朴素叶斯分类器,提高了的分类精度。

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  • An user knowledge based na? Ve bayes classifier was proposed in order to conquer the problem that most of the E-mail is unstructured and need users decoding.

    垃圾邮件分类和朴素贝叶斯算法研究基础上,提出基于用户知识的贝叶斯分类算法。

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  • Naive Bayes classifier is a simple and effective classification method. Classifying based on Bayes Technology has got more and more attentions in the field of data mining.

    朴素叶斯分类简单高效分类器,基于朴素贝叶斯技术的分类是当前数据挖掘领域的一个研究热点。

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  • Naive Bayes classifier is a simple and effective classification method based on probability theory, but its attribute independence assumption is often violated in the real world.

    朴素贝叶斯分类一种简单有效概率分类方法然而属性独立性假设现实世界多数不能成立。

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  • It was the highlights of the paper that the method combined the explicit features and naive bayes classifier together to identify both of the encrypted and not encrypted P2P traffic.

    着重介绍采用明文特征朴素贝叶斯分类相结合方法,对加密以及加密的P 2 P流量进行识别

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  • Naive Bayes classifier is a simple and effective classification method, but its attribute independence assumption makes it unable to express the dependence among attributes in the real world.

    朴素贝叶斯分类一种简单高效分类器,但是属性独立性假设限制对实际数据的应用。

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  • If the NB conditional independence assumption actually holds, a Naive Bayes classifier will converge quicker than discriminative models like logistic regression, so you need less training data.

    倘若条件独立性假设确实满足,朴素贝叶斯分类器将会判别模型,譬如逻辑回归收敛得更快因此需要更少训练数据

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  • The main idea of which consists of three parts: the discriminating feature analysis of the images, the statistical modeling of face and non-face classes, and the Bayes classifier for face detection.

    研究人脸检测叶斯特征判别法,方法包括三个部分:原始图像特征判别分析、人脸区其它区的统计建模以及贝叶斯分类器

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  • In order to solve the problem existing in training data sets, present Bayes algorithm is im - proved and an algorithm using unlabeled data to improve the capability of the classifier is proposed.

    为了解决方法存在训练数据问题本文改进了现有的叶斯分类算法,提出了利用未标记数据提高贝叶斯分类器性能的方法。

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  • Multi-layer classifier Topic search engine Computer education resources Naive Bayes;

    多层分类器; 垂直搜索引擎计算机教育资源朴素贝叶斯;

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  • Multi-layer classifier Topic search engine Computer education resources Naive Bayes;

    多层分类器; 垂直搜索引擎计算机教育资源朴素贝叶斯;

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