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Python machine learning

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出版日:2010/01/22 作者:Olivier Chapelle; Bernhard Scholkopf; Alexander Zien  出版社:Mit Pr  裝訂:平裝
In the field of machine learning, semi-supervised learning (SSL) occupies the middle ground, between supervised learning (in which all training examples are labeled) and unsupervised learning (in whi
出版日:2008/11/01 作者:LesliePack Kaelbling  出版社:Bradford Books  裝訂:平裝
Learning to perform complex action strategies is an important problem in the fields of artificial intelligence, robotics, and machine learning. Filled with interesting new experimental results, Learni
出版日:2008/02/07 作者:Sarah Mount; James Shuttleworth; Russel Winder  出版社:Thomson Learning Emea  裝訂:平裝
Python for Rookies is designed to help students learn how to program. Using the Python language as a tool, the approach taken teaches students the fundamentals of programming and re-enforces good
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出版日:2007/09/03 作者:Petra Perner (EDT)  出版社:Springer-Verlag New York Inc  裝訂:平裝
Ever wondered what the state of the art is in machine learning and data mining? Well, now you can find out. This book constitutes the refereed proceedings of the 5th International Conference on Machin
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出版日:2007/08/31 作者:Lise Getoor  出版社:Mit Pr  裝訂:精裝
Advanced statistical modeling and knowledge representation techniques for a newlyemerging area of machine learning and probabilistic reasoning; includes introductory material,tutorials for different p
Macmillan Children's Readers 5: Dangerous Weather / The Weather Machine
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出版日:2007/01/15 作者:Paul Shipton  出版社:Macmillan Pub Ltd  裝訂:平裝
Part of a 6 level series of readers for children learning English, this work brings together a variety of fiction and non-fiction titles. It aims to provide reinforcement of the basic structures and v
定價:354 元
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出版日:2006/09/22 作者:Olivier Chapelle; Bernhard Scholkopf; Alexander Zien  出版社:Mit Pr  裝訂:精裝
In the field of machine learning, semi-supervised learning (SSL) occupies the middle ground, between supervised learning (in which all training examples are labeled) and unsupervised learning (in whi
出版日:1994/06/29 作者:StephenJose Hanson  出版社:Bradford Books  裝訂:平裝
This second volume represents a synthesis of issues in three historically distinct areas of learning research: computational learning theory, neural network research, and symbolic machine learning. It
出版日:1994/04/10 作者:George Drastal  出版社:Bradford Books  裝訂:平裝
These contributions converge on an intersection of three historically distinct areas of learning research: computational learning theory, neural networks, and symbolic machine learning. Bridging theor
出版日:1993/05/20 作者:LesliePack Kaelbling  出版社:Bradford Books  裝訂:精裝
Learning to perform complex action strategies is an important problem in the fields of artificial intelligence, robotics and machine learning. Presenting interesting, new experimental results, "Learni
出版日:2026/01/11 作者:Noor Zaman Jhanjhi(EDI)  出版社:Elsevier  裝訂:平裝
Federated Learning for the Metaverse: Applications in Virtual Environments provides readers with insights into how federated learning, a decentralized machine learning paradigm, can be strategically applied to address critical aspects of the metaverse. The book covers a wide range of topics, including privacy-preserving personalization, security, collaboration, adaptive learning environments, real-time communication, decentralized governance, language understanding, immersive learning experiences, avatar customization, and dynamic scene rendering.
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Specialized & Advanced Topics on Statistics: Time Series, Causal Inference, and Deep Learning Theory
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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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Beyond ML: Reinforcement Learning, AI Ethics, Explainability (SHAP/LIME), and Emerging Trends
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出版日:2025/05/20 作者:Machine L  出版社:Independently published  裝訂:平裝
定價:1056 元
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出版日:2024/10/03 作者:Chen Qu(EDI)  出版社:Springer Nature  裝訂:平裝
出版日:2021/10/15 作者:Fouzi Harrou  出版社:Elsevier  裝訂:平裝
Road Traffic Modelling and Management: Using Statistical Monitoring and Deep Learning provides a framework for understanding and enhancing road traffic monitoring and management. It examines both the commonly used traffic analysis methodologies as well the emerging ones that use deep learning methods. The book also shows how to understand statistical models and machine learning algorithms, and how to apply them to traffic modelling, estimation, forecasting and traffic congestion monitoring. Providing both a theoretical framework along with practical technical solutions, Road Traffic Modelling and Management: Using Statistical Monitoring and Deep Learning is for researchers and practitioners who want to improve the performance of intelligent transportation systems.
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出版日:2021/04/19 作者:鄧文淵-總監製; 文淵閣工作室-編著  出版社:碁峰資訊  裝訂:平裝
國內外最具代表性案例,9大專題實戰、15個分類實例 Google Colab、Microsoft Azure兩大雲端應用,人臉辨識、自然語言、 文字識別、語音轉換、分析預測、物件自動標示、影像辦識真正實練, 從資料收集整理、模型訓練調整,檢測修正到產出全面解秘! 資料科學(Data Science)技術崛起後,人工智慧(Artificial Intelligence)、機器學習(Machine L
出版日:2019/05/30 作者:Klaas; Jannes  出版社:Packt Publishing  裝訂:平裝
Learning for the Age of Artificial Intelligence ― Eight Education Competences
90 折
出版日:2019/03/15 作者:Alan M. Lesgold  出版社:Routledge  裝訂:平裝
Learning for the Age of Artificial Intelligence is a richly informed argument for curricular change to educate people towards achievement and success as intelligent machine systems proliferate. Descri
優惠價: 9 2226
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出版日:2018/06/27 作者:(荷)英德拉‧丹‧巴克  出版社:機械工業出版社  裝訂:平裝
本書以自上而下和自下而上的方法來展示針對不同領域實際問題的深度學習解決方案,包括圖像識別、自然語言處理、時間序列預測和機器人操縱等。還討論了採用諸如TensorFlow、PyTorch、Keras和CNTK等流行的深度學習開源框架用於實際問題的解決方案及其優缺點。本書內容包括:用於深度學習的編程環境、GPU計算和雲端解決方案;前饋神經網絡與卷積神經網絡;循環與遞歸神經網絡;強化學習與生成對抗網絡;
Foundations of Text Alignment—Statistical Machine Translation Models from Bitexts to Bigrammars
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出版日:2014/06/30 作者:Dekai Wu  出版社:Springer Verlag  裝訂:精裝
This book provides a systematic, foundational introduction to automatic alignment of parallel texts, a family of essential corpus analysis techniques for computing and learning the mappings between co
定價:1498 元
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出版日:2012/05/27 作者:Jose C. Principe  出版社:Springer Verlag  裝訂:平裝
This bookisan outgrowthoften yearsof researchatthe Universityof Florida Computational NeuroEngineering Laboratory (CNEL) in the general area of statistical signal processing and machine learning. One
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出版日:1990/10/22 作者:MichaelJ. Kearns  出版社:Mit Pr  裝訂:精裝
出版日:1990/10/22 作者:Michael J. Kearns  出版社:Mit Pr  裝訂:精裝
The Heinle Reading Library : Illustrated Classics Collection: Level A (Beginning/Early Intermediate)- The Time Machine : Text
90 折
出版社:Cengage Learning  裝訂:平裝
For so long, humans have dreamt of traveling of traveling through time - popularised by H.G. Well's classic novel. As the Time Traveller travels into the future, he finds changed lands and fascinating
優惠價: 9 565
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出版社:Cengage Learning  裝訂:平裝
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Spark大數據分析與實戰(簡體書)
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出版日:2025/01/01 作者:鄭述招  出版社:西安電子科技大學出版社  裝訂:平裝
本書由教學與科研經驗豐富的專任教師、企業資深工程師、全國職業技能大賽一等獎獲得者共同編寫。書中依據“項目引領、任務驅動”的思路,針對數據批量處理、流式處理、機器學習等Spark典型應用情境,設計了8個教學項目,涵蓋Spark Core、Spark SQL、Spark Streaming、Structured Streaming、Spark Machine Learning等技術。其中每個項目細分為3~6個子任務,以保證技能提升的“平滑性”,契合初學者的認知規律。本書內容由淺入深,由實踐到理論,再從理論回到實踐,符合初學者的學習規律。同時,編者為了踐行立德樹人的時代擔當,將思政元素有機融入項目教學,讓讀者在完成拓展項目的同時提升個人素養。本書配套了微課視頻、PPT課件、程序代碼、數據集、教案、教學日曆、考試樣題、課程標準(大綱)等全套教學資源,以利於教師的教學。為了最大限度降低學習門檻,本書還提供了基於Linux的Spark虛擬機環境,可免去讀者配置環境的煩惱。本書可作為高等職業院校、應用型本科院校大數據相關課程的配套教材,也可作為Spark學習者的參考用書。
優惠價: 87 313
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出版日:2024/10/18 作者:Ravi Shankar Dwivedi(EDI)  出版社:CRC PR INC  裝訂:精裝
Timely and reliable information on natural resources, regarding their potential and limitations, is a prerequisite for sustainable development. Geospatial technologies offer immense potential in providing such information in a timely and cost-effective manner. Using orbital sensors data in conjunction with airborne and proximal sensors to generate information on soils and agricultural resources, forests, mineral resources, fossil fuel, wetlands, water resources, and marine resources, this book focuses on the advancements in technologies applicable to managing these resources. It addresses global issues like climate change and land degradation neutrality and introduces Spatial Data Infrastructure (SDI) as a mechanism for sharing geospatial data. It also provides in-depth discussion on drones, crowdsourcing, cloud computing, Internet of Things, machine learning, and their applications.Features Provides a comprehensive resource on the latest developments in geospatial technologies and the
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出版日:2024/01/19 作者:Malcolm Sherrington  出版社:PACKT PUB  裝訂:平裝
A hands-on, code-based guide to leveraging Julia in a variety of scientific and data-driven scenarios Key Features: Augment your basic computing skills with an in-depth introduction to JuliaFocus on topic-based approaches to scientific problems and visualisationBuild on prior knowledge of programming languages such as Python, R, or C/C++Purchase of the print or Kindle book includes a free PDF eBook Book Description: Julia is a well-constructed programming language which was designed for fast execution speed by using just-in-time LLVM compilation techniques, thus eliminating the classic problem of performing analysis in one language and translating it for performance in a second.This book is a primer on Julia's approach to a wide variety of topics such as scientific computing, statistics, machine learning, simulation, graphics, and distributed computing.Starting off with a refresher on installing and running Julia on different platforms, you'll quickly get to grips with the core concept
機器學習技術及應用(簡體書)
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出版日:2023/02/01 作者:徐宏英(等)  出版社:電子工業出版社  裝訂:平裝
本書共6章。第1章介紹機器學習的基本概念及其發展史、機器學習分類、常見機器學習算法及其特點;第2章搭建機器學習開發環境,主要包括Anaconda\PyCham\Python軟件的安裝及使用,以及常見機器學習庫的介紹和安裝使用方法;第3章介紹監督學習的4個經典算法:線性回歸、決策樹、k近鄰和支持向量機算法,其重點在算法的應用;第4章介紹主成分分析降維算法、K-means聚類算法;第5章介紹人工神經網絡基礎,並通過房價預測和手寫數字識別實例進行驗證;第6章介紹強化學習的基本概念,有模型學習和無模型學習,最後介紹了Q-Learning算法和Sarsa算法。
優惠價: 87 355
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機器學習的綜合基礎(簡體書)
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出版日:2021/08/02 作者:張軍英  出版社:西安電子科技大學出版社  裝訂:平裝
This book provides a comprehensive foundation of machine learning. To answer the questions of what to learn, how to learn, what to get from learning, and how to evaluate, as well as what is meant by learning, the book focuses on the fundamental basics of machine learning, its methodology, theory, algorithms, and evaluations, together with some philosophical thinking on comparison between machine learning and human learning for machinery intelligence.The book is organized as follows: Introduction (Chapter 1), Evaluation (Chapter 2), Supervised learning (Chapters 3, 4, and 5), Unsupervised learning (Chapter 6), Representation learning (Chapter 7), Problem decomposition (Chapter 8), Ensemble learning (Chapter 9), Deep learning (Chapter 10), Application (Chapter 11), and Challenges (Chapter 12).The book can be used as a textbook for college, undergraduate, graduate and PhD students majored in computer science, automation, electronic engineering, communication, ect. It can also be used as
優惠價: 87 193
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Data Science with the Raspberry Pi: Real-Time Applications Using a Localized Cloud
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出版日:2021/07/09 作者:Mohaideen Kadhar  出版社:Apress  裝訂:平裝
Implement real-time data processing applications on the Raspberry Pi. This book uniquely helps you work with data science concepts as part of real-time applications using the Raspberry Pi as a localized cloud. You'll start with a brief introduction to data science followed by a dedicated look at the fundamental concepts of Python programming. Here you'll install the software needed for Python programming on the Pi, and then review the various data types and modules available. The next steps are to set up your Pis for gathering real-time data and incorporate the basic operations of data science related to real-time applications. You'll then combine all these new skills to work with machine learning concepts that will enable your Raspberry Pi to learn from the data it gathers. Case studies round out the book to give you an idea of the range of domains where these concepts can be applied. By the end of Data Science with the Raspberry Pi, you'll understand that many applications are now de
定價:2470 元
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出版日:2021/03/25 作者:Cheng Yang  出版社:Morgan & Claypool  裝訂:平裝
Many machine learning algorithms require real-valued feature vectors of data instances as inputs. By projecting data into vector spaces, representation learning techniques have achieved promising performance in many areas such as computer vision and natural language processing. There is also a need to learn representations for discrete relational data, namely networks or graphs. Network Embedding (NE) aims at learning vector representations for each node or vertex in a network to encode the topologic structure. Due to its convincing performance and efficiency, NE has been widely applied in many network applications such as node classification and link prediction.This book provides a comprehensive introduction to the basic concepts, models, and applications of network representation learning (NRL). The book starts with an introduction to the background and rising of network embeddings as a general overview for readers. Then it introduces the development of NE techniques by presenting se
出版日:2019/03/29 作者:Steven Simske  出版社:Morgan Kaufmann Pub  裝訂:平裝
Meta-Analytics: Consensus Approaches and System Patterns for Data Analysis presents an exhaustive set of patterns for data science to use on any machine learning based data analysis task. The book vir
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出版日:2019/03/28 作者:D. Jude Hemanth (EDT); Deepak Gupta (EDT); Valentina Emilia Balas (EDT)  出版社:Academic Pr  裝訂:平裝
Intelligent Data Analysis for Biomedical Applications: Challenges and Solutions presents specialized statistical, pattern recognition, machine learning, data abstraction and visualization tools for th
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出版日:2019/03/25 作者:Marcus Du Sautoy  出版社:Belknap Pr  裝訂:精裝
The award-winning author of The Music of the Primes explores the future of creativity and how machine learning will disrupt, enrich, and transform our understanding of what it means to be human.Can a well-programmed machine do anything a human can—only better? Complex algorithms are buying our groceries, picking our partners, and driving our investments. They can navigate more data than a doctor or lawyer and act with greater precision. For many years we’ve taken solace in the notion that they can’t create. But now that algorithms can learn and adapt, does the future of creativity belong to machines too?It is hard to imagine a better guide to the bewildering world of artificial intelligence than Marcus du Sautoy, a celebrated Oxford mathematician whose work on symmetry in the ninth dimension has taken him to the vertiginous edge of mathematical understanding. In The Creativity Code he considers what machine learning means for the future of creativity. Programs like Deep Dream produce d
出版日:2019/02/15 作者:Sandeep Kumar Satapathy; Satchidananda Dehuri; Alok Kumar Jagadev; Shruti Mishra  出版社:Academic Pr  裝訂:平裝
EEG Brain Signal Classification for Epileptic Seizure Disorder Detection provides the knowledge necessary to classify EEG brain signals to detect epileptic seizures using machine learning techniques.
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This book is intended to provide a systematic overview of so-called smart techniques, such as nature-inspired algorithms, machine learning and metaheuristics. Despite their ubiquitous presence and wid
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