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Linear Mixed-Effects Models Using R

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Introduction to Deep Learning Using R ─ A Step-by-Step Guide to Learning and Implementing Deep Learning Models Using R
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出版日:2017/07/20 作者:Taweh Beysolow II  出版社:Apress  裝訂:平裝
Understand deep learning, the nuances of its different models, and where these models can be applied.The abundance of data and demand for superior products/services have driven the development of adva
定價:3479 元
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Applied Analytics Through Case Studies Using SAS & R ― Implementing Predictive Models and Machine Learning Techniques
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出版日:2018/08/04 作者:Deepti Gupta  出版社:Apress  裝訂:平裝
Examine business problems and use a practical analytical approach to solve them by implementing predictive models and machine learning techniques using SAS and the R analytical language. This bo
定價:2470 元
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Deep Learning with Python: Learn Best Practices of Deep Learning Models with Pytorch
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出版日:2021/04/14 作者:Nikhil Ketkar  出版社:Apress  裝訂:平裝
Master the practical aspects of implementing deep learning solutions with PyTorch, using a hands-on approach to understanding both theory and practice. This updated edition will prepare you for applying deep learning to real world problems with a sound theoretical foundation and practical know-how with PyTorch, a platform developed by Facebook's Artificial Intelligence Research Group.You'll start with a perspective on how and why deep learning with PyTorch has emerged as an path-breaking framework with a set of tools and techniques to solve real-world problems. Next, the book will ground you with the mathematical fundamentals of linear algebra, vector calculus, probability and optimization. Having established this foundation, you'll move on to key components and functionality of PyTorch including layers, loss functions and optimization algorithms. You'll also gain an understanding of Graphical Processing Unit (GPU) based computation, which is essential for training deep learning models
定價:1444 元
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出版日:2019/03/02 作者:Matt Wiley; Joshua F. Wiley  出版社:Apress  裝訂:平裝
Carry out a variety of advanced statistical analyses including generalized additive models, mixed effects models, multiple imputation, machine learning, and missing data techniques using R. Each chapt
若需訂購本書,請電洽客服 02-25006600[分機130、131]。
Practical Machine Learning and Image Processing ― For Facial Recognition, Object Detection, and Pattern Recognition Using Python
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出版日:2019/03/01 作者:Himanshu Singh  出版社:Apress  裝訂:平裝
Gain insights into image-processing methodologies and algorithms, using machine learning and neural networks in Python. This book begins with the environment setup, understanding basic image-processing terminology, and exploring Python concepts that will be useful for implementing the algorithms discussed in the book. You will then cover all the core image processing algorithms in detail before moving onto the biggest computer vision library: OpenCV. You’ll see the OpenCV algorithms and how to use them for image processing. The next section looks at advanced machine learning and deep learning methods for image processing and classification. You’ll work with concepts such as pulse coupled neural networks, AdaBoost, XG boost, and convolutional neural networks for image-specific applications. Later you’ll explore how models are made in real time and then deployed using various DevOps tools. All the concepts in Practical Machine Learning and Image Processing are explained using r
定價:2470 元
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