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Python machine learning

共 5148 筆
第96 / 129 頁
Autonomous Robotics and Deep Learning
90 折
出版日:2014/04/30 作者:Vishnu Nath; Stephen E. Levinson  出版社:Springer Verlag  裝訂:平裝
This Springer Brief examines the combination of computer vision techniques and machine learning algorithms necessary for humanoid robots to develop “true consciousness.” It illustrates the critical fi
優惠價: 9 2835
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Data analysis is changing fast. Driven by a vast range of application domains and affordable tools, machine learning has become mainstream. Unsupervised data analysis, including cluster analysis, fact
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出版日:2004/05/27 作者:Larry Bull (EDT)  出版社:Springer Verlag  裝訂:精裝
This carefully edited book brings together a fascinating selection of applications of Learning Classifier Systems (LCS). The book demonstrates the utility of this machine learning technique in recent
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Deep Learning ─ A Practitioner's Approach
滿額折
出版日:2016/12/25 作者:Adam Gibson; Josh Patterson  出版社:Oreilly & Associates Inc  裝訂:平裝
Looking for one central source where you can learn key findings on machine learning?Deep Learning: The Definitive Guide provides developers and data scientists with the most practical information ava
定價:2280 元
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出版日:2015/10/30 作者:Hari M. Koduvely  出版社:Packt Pub Ltd  裝訂:平裝
Become an expert in Bayesian Machine Learning methods using R and apply them to solve real-world big data problemsAbout This BookUnderstand the principles of Bayesian Inference with less mathematical
定價:2219 元
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出版日:2007/09/17 作者:Steven Abney  出版社:Chapman & Hall  裝訂:精裝
The rapid advancement in the theoretical understanding of statistical and machine learning methods for semisupervised learning has made it difficult for nonspecialists to keep up to date in the field.
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出版日:2016/09/27 作者:Ke-lin Du; M. N. S. Swamy  出版社:Springer-Verlag New York Inc  裝訂:平裝
Providing a broad but in-depth introduction to neural network and machine learning in a statistical framework, this book provides a single, comprehensive resource for study and further research. All t
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出版日:2010/11/30 作者:Shimon Whiteson  出版社:Springer-Verlag New York Inc  裝訂:精裝
This book presents new algorithms for reinforcement learning, a form of machine learning in which an autonomous agent seeks a control policy for a sequential decision task. Since current methods typi
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出版日:2020/08/25 作者:Basilio de Braganca Pereira; Calyampudi Radhakrishna Rao and Fabio Borges de Oliveira  出版社:Chapman & Hall  裝訂:精裝
This book introduces artificial neural networks to students and professionals. It covers the theory and applications in statistical learning methods with concrete Python code examples.
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This enthusiastic introduction to the fundamentals of information theory builds from classical Shannon theory through to modern applications in statistical learning. Includes over 210 student exercises, emphasising practical applications in statistics, machine learning and modern communication theory. Accompanied by online instructor solutions.
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出版日:2010/12/31 作者:Nathalie Japkowicz  出版社:Cambridge Univ Pr  裝訂:精裝
The field of machine learning has matured to the point where many sophisticated learning approaches can be applied to practical applications. Thus it is of critical importance that researchers have the proper tools to evaluate learning approaches and understand the underlying issues. This book examines various aspects of the evaluation process with an emphasis on classification algorithms. The authors describe several techniques for classifier performance assessment, error estimation and resampling, obtaining statistical significance as well as selecting appropriate domains for evaluation. They also present a unified evaluation framework and highlight how different components of evaluation are both significantly interrelated and interdependent. The techniques presented in the book are illustrated using R and WEKA, facilitating better practical insight as well as implementation. Aimed at researchers in the theory and applications of machine learning, this book offers a solid basis for c
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出版日:2011/03/28 作者:James D. Malley  出版社:Cambridge Univ Pr  裝訂:精裝
This book is for anyone who has biomedical data and needs to identify variables that predict an outcome, for two-group outcomes such as tumor/not-tumor, survival/death, or response from treatment. Statistical learning machines are ideally suited to these types of prediction problems, especially if the variables being studied may not meet the assumptions of traditional techniques. Learning machines come from the world of probability and computer science but are not yet widely used in biomedical research. This introduction brings learning machine techniques to the biomedical world in an accessible way, explaining the underlying principles in nontechnical language and using extensive examples and figures. The authors connect these new methods to familiar techniques by showing how to use the learning machine models to generate smaller, more easily interpretable traditional models. Coverage includes single decision trees, multiple-tree techniques such as Random Forests™, neural nets, suppor
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Statistical Learning for Biomedical Data
90 折
出版日:2011/03/28 作者:James D. Malley  出版社:Cambridge Univ Pr  裝訂:平裝
This book is for anyone who has biomedical data and needs to identify variables that predict an outcome, for two-group outcomes such as tumor/not-tumor, survival/death, or response from treatment. Statistical learning machines are ideally suited to these types of prediction problems, especially if the variables being studied may not meet the assumptions of traditional techniques. Learning machines come from the world of probability and computer science but are not yet widely used in biomedical research. This introduction brings learning machine techniques to the biomedical world in an accessible way, explaining the underlying principles in nontechnical language and using extensive examples and figures. The authors connect these new methods to familiar techniques by showing how to use the learning machine models to generate smaller, more easily interpretable traditional models. Coverage includes single decision trees, multiple-tree techniques such as Random Forests™, neural nets, suppor
優惠價: 9 2047
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出版日:2022/10/31 作者:Philipp Grohs  出版社:Cambridge Univ Pr  裝訂:精裝
In recent years the development of new classification and regression algorithms based on deep learning has led to a revolution in the fields of artificial intelligence, machine learning, and data analysis. The development of a theoretical foundation to guarantee the success of these algorithms constitutes one of the most active and exciting research topics in applied mathematics. This book presents the current mathematical understanding of deep learning methods from the point of view of the leading experts in the field. It serves as both a starting point for researchers and graduate students in mathematics trying to get into the field, as well as an invaluable reference for future research.
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Real-world Python ― A Hacker's Guide to Solving Problems With Code
滿額折
出版日:2020/10/13 作者:Lee Vaughan  出版社:No Starch Pr  裝訂:平裝
A project-based approach to learning Python programming for beginners. Intriguing projects teach you how to tackle challenging problems with code.You've mastered the basics. Now you're ready to explor
優惠價: 79 1201
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Python Without Fear ─ A Beginner's Guide That Makes You Feel Smart
滿額折
出版日:2017/10/09 作者:Brian Overland  出版社:Addison-Wesley Professional  裝訂:平裝
Learning Python Doesn’t Have to Be Difficult! Have you ever wanted to learn programming? Have you ever wanted to learn the flexible, easy Python language behind many of today’s bes
定價:1800 元
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出版日:2020/09/22 作者:Tanya Kolosova and Samuel Berestizhevsky  出版社:Chapman & Hall  裝訂:精裝
AI framework intended to solve a problem of bias-variance tradeoff for supervised learning methods in real-life applications. It comprises of bootstrapping to create multiple training and testing
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出版日:2018/01/30 作者:Hobson Lane; Hannes Hapke; Cole Howard  出版社:Manning Pubns Co  裝訂:平裝
Modern NLP techniques based on machine learning radically improve the ability of software to recognize patterns, use context to infer meaning, and accurately discern intent from poorly-structured text
定價:2500 元
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出版日:2017/10/20 作者:E. R. Davies  出版社:Academic Pr  裝訂:精裝
Computer Vision: Principles, Algorithms, Applications, Learning (previously entitled Computer and Machine Vision) clearly and systematically presents the basic methodology of computer vision, covering
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出版日:2013/08/31 作者:Krzysztof Grabczewski  出版社:Springer-Verlag New York Inc  裝訂:精裝
The book focuses on different variants of decision tree induction but also describes the meta-learning approach in general which is applicable to other types of machine learning algorithms. The book
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Learning Kernel Classifiers ─ Theory and Algorithms
79 折
出版日:2001/12/07 作者:Ralf Herbrich  出版社:Mit Pr  裝訂:精裝
Linear classifiers in kernel spaces have emerged as a major topic within the field of machine learning. The kernel technique takes the linear classifier—a limited, but well-established and comp
優惠價: 79 2370
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資料科學學習手冊:Python資料處理、探索、視覺化與建模實作
滿額折
出版日:2026/02/02 作者:Sam Lau; Joseph Gonzalez; Deborah Nolan  出版社:美商歐萊禮  裝訂:平裝
「這本書正是我當年提出『資料科學家』這個職稱時,所希望能擁有的一本書。如果您希望投身資料科學╱工程、人工智慧,或機器學習領域,就該從這裡開始。」 ── DJ Patil 博士,美國首任首席資料科學家 身為一位有志成為資料科學家的讀者,能夠理解各類組織為何仰賴資料來做出關鍵決策──無論是公司在設計網站、還是市政府在改善公共服務,或者是科學家在致力於阻止疾病擴散。而您也希望具備將雜亂資料整理為可行洞見的能力。我們將這整個過程稱為「資料科學生命週期」:也就是從資料的收集、整理、分析,到導出結論的完整流程。 本書是第一本涵蓋程式設計與統計兩大基礎技能、並貫穿整個資料科學生命週期的書籍。本書的對象包括希望成為資料科學家的人、與資料科學家共事的專業人士,以及希望跨越「技術╱非技術」界線的資料分析師。只要具備基本的 Python 程式設計知識,便可學習如何透過業界標準工具(如 pandas)來處理資料: .將感興趣的問題精煉為可透過資料探究的研究問題 .執行資料蒐集,其中可能涉及文字處理、網頁爬蟲等技術 .透過資料清理、探索與視覺化,萃取出有價值的洞見 .學會使用建模來描述資料特性 .推廣研究結果,進行超出資料本身的推論
優惠價: 9 882
庫存:4
出版日:2016/06/23 作者:Prateek Joshi  出版社:Packt Pub Ltd  裝訂:平裝
定價:3779 元
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出版日:2021/01/25 作者:Joseph Mining  出版社:Lightning Source Inc  裝訂:精裝
The world of machine learning is changing all the time. It is so amazing the idea that we are able to take a computer and let it learn as it goes. Without having to write out all of the codes that we need for every situation out there or every input that the user may pick, we are able to write out codes in machine learning, even with Python, in order to let the computer or device learn and make decisions on its own.This guidebook is going to take a closer look at how Python machine learning is able to work, as well as how you can use some of the tools and techniques that come with this process for your own needs. When you are interested in learning more about what machine learning is all about, as well as how you can use a part of the coding from Python inside of this process, then this guidebook is the tool for you Some of the topics that we will explore when we go through this guidebook will include: Understanding some of the basics of machine learning;Some of the different parts tha
Python for Machine Learning & Data Science: Utilize Python for machine learning and data science projects
滿額折
Python Essentials 2025: Data Structures, Algorithms, File Handling, and APIs in Python
滿額折
出版日:2025/04/12 作者:Machine L  出版社:Independently published  裝訂:平裝
定價:864 元
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Python Essentials 2025: Advanced Concurrency, Optimization, Metaprogramming, and Scalable Systems
滿額折
出版日:2025/04/13 作者:Machine L  出版社:Independently published  裝訂:平裝
定價:1056 元
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Python Programming for Beginners: The Ultimate Guide to Python, Machine Learning and Data Science
滿額折
出版日:2021/04/09 作者:David Files  出版社:Lightning Source Inc  裝訂:平裝
定價:1064 元
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Python Programming for Beginners: The Ultimate Guide to Python, Machine Learning and Data Science
滿額折
出版日:2021/04/09 作者:David Files  出版社:Lightning Source Inc  裝訂:精裝
定價:1444 元
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出版日:2023/08/01 作者:Nibedita Sahu  出版社:MASSETTI PUB  裝訂:平裝
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Learn Pyspark ― Build Python-based Machine Learning and Deep Learning Models
滿額折
出版日:2019/09/28 作者:Pramod Singh  出版社:Apress  裝訂:平裝
定價:2090 元
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Applied & Computational Statistics: Machine Learning, Nonparametrics, and High-Dimensional Stats
滿額折
出版日:2025/05/29 作者:Machine L  出版社:Independently published  裝訂:平裝
定價:960 元
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