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Python data mining and machine learning in action

3734
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Learning Scientific Programming with Python
90 折
出版日:2020/10/31 作者:Christian Hill  出版社:Cambridge Univ Pr  裝訂:平裝
Learn to master basic programming tasks from scratch with real-life, scientifically relevant examples and solutions drawn from both science and engineering. Students and researchers at all levels are increasingly turning to the powerful Python programming language as an alternative to commercial packages and this fast-paced introduction moves from the basics to advanced concepts in one complete volume, enabling readers to gain proficiency quickly. Beginning with general programming concepts such as loops and functions within the core Python 3 language, and moving on to the NumPy, SciPy and Matplotlib libraries for numerical programming and data visualization, this textbook also discusses the use of Jupyter Notebooks to build rich-media, shareable documents for scientific analysis. The second edition features a new chapter on data analysis with the pandas library and comprehensive updates, and new exercises and examples. A final chapter introduces more advanced topics such as floating-p
優惠價: 9 2051
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A Tour of Data Science:Learn R and Python in Parallel
90 折
出版日:2020/10/15 作者:Nailong Zhang  出版社:PBKTYFRL  裝訂:平裝
優惠價: 9 2699
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The Alignment Problem: Machine Learning and Human Values
79 折
出版日:2020/10/06 作者:Brian Christian  出版社:W W Norton & Co Inc  裝訂:精裝
A jaw-dropping exploration of everything that goes wrong when we build AI systems and the movement to fix them.Today’s “machine-learning” systems, trained by data, are so effective that we’ve invited
優惠:外文書周末優惠-單79雙75 優惠價: 79 869
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Unsupervised Machine Learning for Clustering in Political and Social Research
90 折
出版日:2020/09/30 作者:Philip D. Waggoner  出版社:Cambridge Univ Pr  裝訂:平裝
In the age of data-driven problem-solving, applying sophisticated computational tools for explaining substantive phenomena is a valuable skill. Yet, application of methods assumes an understanding of the data, structure, and patterns that influence the broader research program. This Element offers researchers and teachers an introduction to clustering, which is a prominent class of unsupervised machine learning for exploring and understanding latent, non-random structure in data. A suite of widely used clustering techniques is covered in this Element, in addition to R code and real data to facilitate interaction with the concepts. Upon setting the stage for clustering, the following algorithms are detailed: agglomerative hierarchical clustering, k-means clustering, Gaussian mixture models, and at a higher-level, fuzzy C-means clustering, DBSCAN, and partitioning around medoids (k-medoids) clustering.
優惠價: 9 972
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出版日:2020/08/13 作者:Edited by Neeraj Kumar; N. Gayathri; Md Arafatur Rahman and B. Balamurugan  出版社:CRC Pr I Llc  裝訂:精裝
Present book covers new paradigms in Blockchain, Big Data and Machine Learning concepts including applications and case studies. It explains dead fusion in realizing the privacy and security of
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出版日:2020/07/31 作者:Man-Wai Mak  出版社:Cambridge Univ Pr  裝訂:精裝
This book will help readers understand fundamental and advanced statistical models and deep learning models for robust speaker recognition and domain adaptation. This useful toolkit enables readers to apply machine learning techniques to address practical issues, such as robustness under adverse acoustic environments and domain mismatch, when deploying speaker recognition systems. Presenting state-of-the-art machine learning techniques for speaker recognition and featuring a range of probabilistic models, learning algorithms, case studies, and new trends and directions for speaker recognition based on modern machine learning and deep learning, this is the perfect resource for graduates, researchers, practitioners and engineers in electrical engineering, computer science and applied mathematics.
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Machine Learning Refined ― Foundations, Algorithms, and Applications
90 折
出版日:2020/02/29 作者:Jeremy Watt  出版社:Cambridge Univ Pr  裝訂:精裝
With its intuitive yet rigorous approach to machine learning, this text provides students with the fundamental knowledge and practical tools needed to conduct research and build data-driven products. The authors prioritize geometric intuition and algorithmic thinking, and include detail on all the essential mathematical prerequisites, to offer a fresh and accessible way to learn. Practical applications are emphasized, with examples from disciplines including computer vision, natural language processing, economics, neuroscience, recommender systems, physics, and biology. Over 300 color illustrations are included and have been meticulously designed to enable an intuitive grasp of technical concepts, and over 100 in-depth coding exercises (in Python) provide a real understanding of crucial machine learning algorithms. A suite of online resources including sample code, data sets, interactive lecture slides, and a solutions manual are provided online, making this an ideal text both for grad
優惠價: 9 3131
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Machine Learning for Asset Managers
90 折
出版日:2020/02/29 作者:Marcos M. López de Prado  出版社:Cambridge Univ Pr  裝訂:平裝
Successful investment strategies are specific implementations of general theories. An investment strategy that lacks a theoretical justification is likely to be false. Hence, an asset manager should concentrate her efforts on developing a theory rather than on backtesting potential trading rules. The purpose of this Element is to introduce machine learning (ML) tools that can help asset managers discover economic and financial theories. ML is not a black box, and it does not necessarily overfit. ML tools complement rather than replace the classical statistical methods. Some of ML's strengths include (1) a focus on out-of-sample predictability over variance adjudication; (2) the use of computational methods to avoid relying on (potentially unrealistic) assumptions; (3) the ability to “learn” complex specifications, including nonlinear, hierarchical, and noncontinuous interaction effects in a high-dimensional space; and (4) the ability to disentangle the variable search from the specific
優惠價: 9 972
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Mathematics for Machine Learning
90 折
出版日:2020/01/31 作者:Marc Peter Deisenroth  出版社:Cambridge Univ Pr  裝訂:平裝
The fundamental mathematical tools needed to understand machine learning include linear algebra, analytic geometry, matrix decompositions, vector calculus, optimization, probability and statistics. These topics are traditionally taught in disparate courses, making it hard for data science or computer science students, or professionals, to efficiently learn the mathematics. This self-contained textbook bridges the gap between mathematical and machine learning texts, introducing the mathematical concepts with a minimum of prerequisites. It uses these concepts to derive four central machine learning methods: linear regression, principal component analysis, Gaussian mixture models and support vector machines. For students and others with a mathematical background, these derivations provide a starting point to machine learning texts. For those learning the mathematics for the first time, the methods help build intuition and practical experience with applying mathematical concepts. Every cha
優惠價: 9 2159
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出版日:2020/01/31 作者:Marc Peter Deisenroth  出版社:Cambridge Univ Pr  裝訂:精裝
The fundamental mathematical tools needed to understand machine learning include linear algebra, analytic geometry, matrix decompositions, vector calculus, optimization, probability and statistics. These topics are traditionally taught in disparate courses, making it hard for data science or computer science students, or professionals, to efficiently learn the mathematics. This self-contained textbook bridges the gap between mathematical and machine learning texts, introducing the mathematical concepts with a minimum of prerequisites. It uses these concepts to derive four central machine learning methods: linear regression, principal component analysis, Gaussian mixture models and support vector machines. For students and others with a mathematical background, these derivations provide a starting point to machine learning texts. For those learning the mathematics for the first time, the methods help build intuition and practical experience with applying mathematical concepts. Every cha
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出版日:2019/12/31 作者:Henriette Roued-cunliffe  出版社:Facet Pub  裝訂:平裝
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Coefficient of Variation and Machine Learning Applications
90 折
Coefficient of Variation (CV) is a unit free index indicating the consistency of the data associated with a real-world process and is simple to mold into computational paradigms. This book provides ne
優惠價: 9 3077
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出版日:2019/11/30 出版社:Igi Global  裝訂:平裝
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The Educational Intelligent Economy ― Big Data, Artificial Intelligence, Machine Learning and the Internet of Things in Education
滿額折
出版日:2019/11/25 作者:Tavis D. Jules (EDT); Florin D. Salajan (EDT)  出版社:Emerald Group Pub Ltd  裝訂:精裝
優惠:外文書周末優惠-單79雙75 優惠價: 79 5309
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出版日:2019/10/25 作者:Kantardzic  出版社:John Wiley & Sons Inc  裝訂:精裝
Presents the latest techniques for analyzing and extracting information from large amounts of data in high-dimensional data spaces The revised and updated third edition of Data Mining contains in one
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出版日:2019/09/30 作者:Kashyap; Ramgopal; Kumar; A.V. Senthil  出版社:Igi Global  裝訂:精裝
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Machine Learning In The Aws Cloud
滿額折
出版日:2019/08/23 作者:Mishra  出版社:John Wiley & Sons Inc  裝訂:平裝
Put the power of AWS Cloud machine learning services to work in your business and commercial applications! Machine Learning in the AWS Cloud introduces readers to the machine learning (ML) capabiliti
優惠價: 9 1710
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Python by Example ― Learning to Program in 150 Challenges
90 折
出版日:2019/07/31 作者:Nichola Lacey  出版社:Cambridge Univ Pr  裝訂:平裝
Python is today's fastest growing programming language. This engaging and refreshingly different guide breaks down the skills into clear step-by-step chunks and explains the theory using brief easy-to-understand language. Rather than bamboozling readers with pages of mind-numbing technical jargon, this book includes 150 practical challenges, putting the power in the reader's hands. Through creating programs to solve these challenges the reader will quickly progress from mastering the basics to confidently using subroutines, a graphical user interface, and linking to external text, csv and SQL files. This book is perfect for anyone who wants to learn how to program with Python. In particular, students starting out in computer science and teachers who want to improve their confidence in Python will find here a set of ready-made challenges for classroom use.
優惠價: 9 1079
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Fundamentals of Image Data Mining ― Analysis, Features, Classification and Retrieval
90 折
出版日:2019/05/24 作者:Dengsheng Zhang  出版社:Springer-Verlag New York Inc  裝訂:精裝
This reader-friendly textbook presents a comprehensive review of the essentials of image data mining, and the latest cutting-edge techniques used in the field. The coverage spans all aspects of image
優惠價: 9 2807
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出版日:2019/04/20 作者:Paul Deitel; Harvey Deitel  出版社:Pearson College Div  裝訂:平裝
A groundbreaking, flexible approach to computer science and data scienceThe Deitels’ Introduction to Python for Computer Science and Data Science: Learning to Program with AI, Big Data and the Cloud o
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Business Data Science ― Combining Machine Learning and Economics to Optimize, Automate, and Accelerate Business Decisions
90 折
出版日:2019/04/19 作者:Matt Taddy  出版社:McGraw-Hill  裝訂:精裝
The first machine-learning guide that helps you understand customers, frame decisions, and drive value Business Data Science reveals the best ways for utilizing machine learning (ML) to mak
優惠價: 9 1505
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Practical Machine Learning and Image Processing ― For Facial Recognition, Object Detection, and Pattern Recognition Using Python
滿額折
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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This book features research papers presented at the International Conference on Emerging Technologies in Data Mining and Information Security (IEMIS 2018) held at the University of Engineering & Manag
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出版日:2018/12/14 作者:Nilanjan Dey (EDT); Surekha Borra (EDT); Amira S. Ashour (EDT); Fuqian Shi (EDT)  出版社:Academic Pr  裝訂:平裝
Machine Learning in Bio-Signal Analysis and Diagnostic Imaging presents original research on the advanced analysis and classification techniques of biomedical signals and images that cover both superv
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出版日:2018/12/14 作者:Badrul H. Khan (EDT); Joseph Rene Corbeil (EDT); Maria Elena Corbeil (EDT)  出版社:Taylor & Francis  裝訂:精裝
Rapid advancements in our ability to collect, process, and analyze massive amounts of data along with the widespread use of online and blended learning platforms have enabled educators at all levels t
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出版日:2018/12/10 作者:Pedro Larrañaga; Alberto Ogbechie; Javier Diaz-rozo; David Atienza; Concha Bielza  出版社:CRC Pr I Llc  裝訂:精裝
Industrial Applications of Machine Learning shows how machine learning can be applied to address real-world problems in the fourth industrial revolution, and provides the required knowledge and tools
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