• Category learning is increasingly concerned in the last decade. There are two forms of category learning, classification learning and inference learning.

    类别学习十年受到研究者的极大关注,类别学习两种形式分别为分类学习推理学习。

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  • The analytical work involves applying statistical inference and machine learning techniques.

    分析工作涉及到统计推断机器学习技术应用

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  • One area that's going to get a lot of attention is combining machine learning with causal inference.

    未来有一个领域得到很多关注就是机器学习因果推理结合

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  • Emphasizes questions of inductive learning and inference, and the representation of knowledge.

    重在归纳学习推断知识表现问题探讨。

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  • This dissertation focuses on efficient exact inference on belief networks, learning belief networks from data, and classification using belief networks.

    论文详细研究精确推理、信度网学习信度网分类有关内容

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  • Decision tree learning is one of the widely used and practical methods for inductive inference.

    决策学习应用广泛归纳推理算法之一。

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  • A fuzzy neural network prediction control model is stated by using the logic inference performance of fuzzy control and the learning ability of neural network.

    应用模糊控制逻辑推理性能借助神经网络学习能力,提出了种模糊神经网络预测控制模型

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  • Recognition of patterns and inference skills lie at the core of human learning.

    模式识别推理技能人类学习能力核心所在

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  • A fuzzy Q learning algorithm is proposed in this dissertation, which map continuous state Spaces to continuous action Spaces by fuzzy inference system and then learn a rule base.

    首先,提出模糊Q学习算法通过模糊推理系统连续状态空间映射连续的动作空间,然后通过学习得到一个完整的规则库。

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  • It supports directed and undirected models, discrete and continuous variables, various inference and learning algorithms.

    支持向或无向模型离散连续变量各种推论学习算法

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  • The compensation fuzzy neural network (CFNN) with fast learning algorithm and compensation fuzzy inference is introduced in this paper.

    本文介绍了一种具有快速学习算法、能够执行补偿模糊推理补偿模糊神经网络

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  • FNN efficiently maps the complex non-linear relationship between data by drill and rebound methods for its automatic learning, generation and fuzzy logic inference.

    由于模糊神经网络具有很强的自学习、泛化模糊逻辑推理功能,可以有效地映射出钻芯回弹数据复杂非线性关系。

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  • The membership functions and the inference rules in the controller are modified using the learning functions of neural network so that the adaptability of the controller is further enhanced.

    利用神经网络学习功能控制器隶属度函数推理规则进行修正,提高适应能力。

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  • The parameters of me fuzzy control rules of me controller can be learned by the learning slgorithm of the neural netowrk. and the inference process can be realized by the network.

    应用单层神经网络可以学习多变量模糊控制规则中的未知参数.还来实现多变量模糊推理过程

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  • Bayesian learning Theory represents uncertainty with probability and learning and inference are realized by probabilistic rules.

    贝叶斯学习理论使用概率表示所有形式的不确定性通过概率规则实现学习推理过程

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  • Dynamic Bayesian Network (DBN), because of extensibility, powerful description, inference and learning abilities for the time series, being used in the speech recognition.

    动态贝叶斯网络(DBN),以其扩展性和对时间序列的强大描述推导学习能力,逐渐应用于连续语音识别

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  • This text USES some theory researching method, such as logical inference, documentary method and so on to research the cause of difficulties in learning physics and gives teaching countermeasures.

    本文利用逻辑推理文献理论研究方法高中生学习物理困难原因相应教学对策进行了研究

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  • Transductive inference based on support vector machine is a relatively new research region in statistical learning theory.

    基于支持向量的直推式学习统计学习理论一个新的研究领域

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  • The system's conformation, function, self-learning ability, setting up of a knowledge bank and the formation of an inference mechanism are being explained.

    介绍系统结构功能自学习能力知识库建立推理机的实现。

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  • Medical Diagnosis; Machine Learning; Back-Propagation Neural Network; Adaptive Neural Fuzzy Inference System.

    医学诊断机器学习倒传递网路适应性类神经模糊推论系统

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  • While the article proposes the improved inference and self-learning method of fuzzy rule.

    提出模糊规则改进推理自学习方法

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  • This adaptive fuzzy controller is based on fuzzy inference rules self-learning without needing so much expert control rules, which solves the problem of acquiring MIMO fuzzy inference rules.

    这种自适应模糊控制器基于模糊推理规则学习和自调整控制算法,无需知道太多专家控制规则,因此解决了制冷系统MIMO模糊推理规则难以获取问题

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  • With the neural network based approach, human knowledge and machine learning are effectively combined together in the semantic inference.

    通过这种方法我们能够准确提取多媒体传感器网络中的音频高层语义信息。

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  • What's the Difference Between Deep Learning Training and Inference?

    深度学习训练推理有不同?

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  • What's the Difference Between Deep Learning Training and Inference?

    深度学习训练推理有不同?

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