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    Learning in Graphical Models - 图书

    1998
    导演:Michael I·Jordan
    Graphical models, a marriage between probability theory and graph theory, provide a natural tool for dealing with two problems that occur throughout applied mathematics and engineering--uncertainty and complexity. In particular, they play an increasingly important role in the design and analysis of machine learning algorithms. Fundamental to the idea of a graphical model is the...(展开全部)
    Learning in Graphical Models
    图书

    Probabilistic Graphical Models: Principles and Techniques - 图书

    导演:Daphne Koller
    Most tasks require a person or an automated system to reason--to reach conclusions based on available information. The framework of probabilistic graphical models, presented in this book, provides a general approach for this task. The approach is model-based, allowing interpretable models to be constructed and then manipulated by reasoning algorithms. These models can also be l...(展开全部)
    Probabilistic Graphical Models: Principles and Techniques
    搜索《Probabilistic Graphical Models: Principles and Techniques》
    图书

    Probabilistic Graphical Models: Principles and Techniques - 图书

    导演:Daphne Koller
    Most tasks require a person or an automated system to reason--to reach conclusions based on available information. The framework of probabilistic graphical models, presented in this book, provides a general approach for this task. The approach is model-based, allowing interpretable models to be constructed and then manipulated by reasoning algorithms. These models can also be l...(展开全部)
    Probabilistic Graphical Models: Principles and Techniques
    搜索《Probabilistic Graphical Models: Principles and Techniques》
    图书

    Graphical Models, Exponential Families, and Variational Inference - 图书

    2008
    导演:Martin J Wainwright
    The formalism of probabilistic graphical models provides a unifying framework for capturing complex dependencies among random variables, and building large-scale multivariate statistical models. Graphical models have become a focus of research in many statistical, computational and mathematical fields, including bioinformatics, communication theory, statistical physics, combina...(展开全部)
    Graphical Models, Exponential Families, and Variational Inference
    搜索《Graphical Models, Exponential Families, and Variational Inference》
    图书

    Graphical Models, Exponential Families, and Variational Inference - 图书

    2008
    导演:Martin J Wainwright
    The formalism of probabilistic graphical models provides a unifying framework for capturing complex dependencies among random variables, and building large-scale multivariate statistical models. Graphical models have become a focus of research in many statistical, computational and mathematical fields, including bioinformatics, communication theory, statistical physics, combina...(展开全部)
    Graphical Models, Exponential Families, and Variational Inference
    搜索《Graphical Models, Exponential Families, and Variational Inference》
    图书

    Computer Vision: Models, Learning, and Inference - 图书

    导演:Dr Simon J·D·Prince
    This modern treatment of computer vision focuses on learning and inference in probabilistic models as a unifying theme. It shows how to use training data to learn the relationships between the observed image data and the aspects of the world that we wish to estimate, such as the 3D structure or the object class, and how to exploit these relationships to make new inferences abou...(展开全部)
    Computer Vision: Models, Learning, and Inference
    搜索《Computer Vision: Models, Learning, and Inference》
    图书

    Feature Engineering for Machine Learning Models - 图书

    2017
    导演:Alice Zheng
    特征工程对于应用机器学习来说是基础的,但是使用域知识来加强你的预测模型既困难成本又高。为了弥补特征工程现有资料的不足,本书将会为初中级数据科学家讲解如何处理这项广泛应用却鲜见讨论的技术。 作者Alic Zheng会讲解常用的练习和数学原理,以帮助工程师分析新数据和任务的特征。如果你理解基本的机器学习概念,如有监督学习和无监督学习,那么你已经准备好学习本书了。你不仅会学习到如何以一种系统化和原理化的方式部署特征工程,并且还会学习如何更好地实践数据科学。
    Feature Engineering for Machine Learning Models
    搜索《Feature Engineering for Machine Learning Models》
    图书

    Computer Vision: Models, Learning, and Inference - 图书

    导演:Dr Simon J·D·Prince
    This modern treatment of computer vision focuses on learning and inference in probabilistic models as a unifying theme. It shows how to use training data to learn the relationships between the observed image data and the aspects of the world that we wish to estimate, such as the 3D structure or the object class, and how to exploit these relationships to make new inferences abou...(展开全部)
    Computer Vision: Models, Learning, and Inference
    搜索《Computer Vision: Models, Learning, and Inference》
    图书

    Feature Engineering for Machine Learning Models - 图书

    2017
    导演:Alice Zheng
    特征工程对于应用机器学习来说是基础的,但是使用域知识来加强你的预测模型既困难成本又高。为了弥补特征工程现有资料的不足,本书将会为初中级数据科学家讲解如何处理这项广泛应用却鲜见讨论的技术。 作者Alic Zheng会讲解常用的练习和数学原理,以帮助工程师分析新数据和任务的特征。如果你理解基本的机器学习概念,如有监督学习和无监督学习,那么你已经准备好学习本书了。你不仅会学习到如何以一种系统化和原理化的方式部署特征工程,并且还会学习如何更好地实践数据科学。
    Feature Engineering for Machine Learning Models
    搜索《Feature Engineering for Machine Learning Models》
    图书

    Machine Learning in Action - 图书

    导演:Peter Harrington
    It's been said that data is the new "dirt"—the raw material from which and on which you build the structures of the modern world. And like dirt, data can seem like a limitless, undifferentiated mass. The ability to take raw data, access it, filter it, process it, visualize it, understand it, and communicate it to others is possibly the most essential business problem for the co...(展开全部)
    Machine Learning in Action
    搜索《Machine Learning in Action》
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