• SOLO模型观察到学习结果进行分类理论框架包括思维方式复杂性水平两个关键特征

    SOLO model is a theory structure to classify the observed learning outcome with main features of models of thinking and levels of complexity.

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  • 本文主要研究目前较为流行的基于统计学习理论分类方法——支持向量方法(SVM),以及小变换提取特征的方法,将用于人脸检测

    This paper mainly make research on classify methods based on statistical theory, support vector machine (SVM), and feature extraction method-wavelet transform, and using them in human face detection.

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  • 统计学习理论中,尤其对于分类问题VC扮演中心作用

    VC dimension plays a central role in the Statistical Learning Theory especially for classification problems.

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  • 利用粗糙理论通过训练集的学习构造分类规则支持向量反馈后的结果再次进行处理

    By using rough set theory, this paper structures classification rules and processes the support vector machine feedback results with learning the train set.

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  • 本文依据知识分类学习策略等心理学理论,对基于网络环境初中语文教学内容呈现策略进行了系统设计研究。

    The thesis is according to the Knowledge Classification Theory and Learning strategies, and design the presenting tactics of the Chinese web-based curriculum content of junior middle school.

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  • 支持向量基于统计学习理论框架下的一种简单有效分类方法

    Support Vector Machines algorithm is a simple and effective classification method based upon statistical learning theory.

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  • 此外,根据研究目标文章详细设计知识管理系统中的知识分类系统、基于活动理论虚拟学习社区

    Besides, the dissertation also detailedly design the knowledge taxon system in knowledge management system and virtual learning community based on activity theory.

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  • 课程实施需要与课程目标分类相匹配学习理论支撑。

    Curriculum implementation requires the learning theories matching to the classification of curriculum goals.

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  • 其次认真研究统计学习理论的主要内容SVM算法的基本原理,并且就SVM的多种多类别分类算法分别加以讨论

    Secondly, the text studies the Statistical Learning Theory(STL) and Support Vector Machine(SVM)theory seriously, discusses multi-category classification algorithms of SVM.

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  • 目标教学模式在教育目标分类学和掌握学习理论指导下,目前已经进行开发的教学模式之一,也是其它学科研究的热点问题

    Objective Teaching Model is one of the most mature teaching model ever developed, also it is the hot spot what is concerned about another branch of learning .

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  • 支持向量基于统计学习理论新颖机器学习方法方法广泛用于解决分类回归问题

    Support vector machines (SVM) are a kind of novel machine learning methods, based on statistical learning theory, which have been developed for solving classification and regression problems.

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  • 支持向量基于统计学习理论新颖机器学习方法方法广泛用于解决分类回归问题

    Support vector machines (SVM) are a kind of novel machine learning methods based on statistical learning theory, which has been developed to solve classification and regression problems.

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  • 为了在线学习文档进行分类本文根据自适应谐振理论给出一个半监督学习模糊art模型(SLFART)及其算法

    For learning document classification on line, the paper gives the semi-supervised learning fuzzy ART model (SLFART) based on adaptive resonance theory and the models algorithm.

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  • 本文使用机器学习理论讨论文本分类方法过滤垃圾邮件

    In this article we discussed filter spam methods using text categorization technologies in machine learning fields.

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  • 某种意义上说,通过理论挖掘出分类规则系统通过学习机制而产生的,因而可以解决知识自动获取瓶颈问题

    In a sense, rough sets is a kind of self-study mechanism, so we can solve the problem of knowledge obtained automatically by using rough sets.

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  • 实验室有关范畴学习研究局限于对分类的研究,这就导致在分类研究基础上提出的范畴理论不能适用于其他分类范畴学习任务

    Laboratory studies of category acquisition limit to categorization task. So category theory on the basis of classification study can not applied to other nonclassification types of category learning.

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  • 在课程中带有稀疏值理论分类神经网路回归使用探讨监督式学习

    Supervised learning with the use of regression and classification networks with sparse data sets will be explored.

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  • 粗糙理论最初人工智能某些分支例如推理自动分类模式识别学习算法的研究中重要的。

    The rough set concept can be of some importance, primarily in some branches of artificial intelligence, such as reasoning, automatic classification, pattern recognition, learning algorithms, etc.

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  • 文章前面三个部分研究了英语学习过程错误意义,错误识别以及分类理论

    The meaning and the identification of error in English study and the classification are studied in the first three parts.

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  • 依据理论分类功能,使编者应掌握习题的这些分类和功能,以便根据实际需要来编制习题。

    The second part puts forward the theoretical classfication and instrction of mathematical exercises because the compiler could use it as he needs in fact.

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  • 本文通过构件分类模式检索技术背景研究现状相关理论学习指出了目前基于分类模式的构件检索方法中存在的问题。

    By studying related background, current research work and theories, problems of the current component retrieval method based on faceted classification schema are pointed out.

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  • 提出了“惯性校正法”,对加速学习原因进行了理论分析,并结合岩性分类字母识别两个实验,理论观点进行验证

    The gradient decent learning with momentum is introduced, and analysis is described why it can speed up learning speed. Further more, two experiments are presented to verify previous views.

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  • 分类器的设计上,重点讨论了近邻分类基于统计学习理论支持向量(SVM)。

    We emphases discussed the nearest neighbor classifier and support vector machine (SVM) based on the statistical study theory.

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  • 本文选择蛋白质二级结构数据主要研究对象应用数据挖掘技术机器学习中的动态规划理论进行蛋白质结构分类

    Protein second structure data is chosen as main study object, and data mining and dynamic programming are applied to protein structure classification.

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  • 支持向量SVM建立统计学习理论基础上一种小样本机器学习方法用于解决分类问题

    Support Vector Machines(SVM) are developed from the theory of limited samples Statistical Learning Theory (SLT) by Vapnik et al. , which are originally designed for binary classification.

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  • 通过客观分析当前运动学习的现状误区,尝试进行运动学习层次分类,提出层次学习心理模式使行为主义联结学习理论认知学习理论联系起来。

    It attempts to classify the sports leaning structure for different learning steps, and furthermore to relate them with the behavioristic association theory and cognitive learning theory.

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  • 研究范围内容主要涉及移动 学习概念界定、移动学习分类、移动学习特点、移动学习的主要理论依据、移动学习教学设计原则和设计模式建构

    In this paper, the main research scope and content ofm-learning involved in definition classifying, speciality, main theoretical base, ID principles, establishing of ID model, and so on.

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  • 研究范围内容主要涉及移动 学习概念界定、移动学习分类、移动学习特点、移动学习的主要理论依据、移动学习教学设计原则和设计模式建构

    In this paper, the main research scope and content ofm-learning involved in definition classifying, speciality, main theoretical base, ID principles, establishing of ID model, and so on.

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