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Introduction to Privacy-Preserving Data Publishing, Fung, Benjamin C.M.


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Цена: 137810.00T
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При оформлении заказа до: 2025-08-18
Ориентировочная дата поставки: конец Сентября - начало Октября
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Автор: Fung, Benjamin C.M.
Название:  Introduction to Privacy-Preserving Data Publishing
ISBN: 9781420091489
Издательство: Taylor&Francis
Классификация:

ISBN-10: 1420091484
Обложка/Формат: Hardback
Страницы: 376
Вес: 0.67 кг.
Дата издания: 02.08.2010
Язык: English
Размер: 242 x 155 x 30
Читательская аудитория: Professional & vocational
Подзаголовок: Concepts and techniques
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Поставляется из: Европейский союз

Apply Data Science

Автор: Thomas Barton
Название: Apply Data Science
ISBN: 3658387971 ISBN-13(EAN): 9783658387976
Издательство: Springer
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Цена: 46570.00 T
Наличие на складе: Поставка под заказ.
Описание: This book offers an introduction to the topic of data science based on the visual processing of data. It deals with ethical considerations in the digital transformation and presents a process framework for the evaluation of technologies. It also explains special features and findings on the failure of data science projects and presents recommendation systems in consideration of current developments. Machine learning functionality in business analytics tools is compared and the use of a process model for data science is shown. The integration of renewable energies using the example of photovoltaic systems, more efficient use of thermal energy, scientific literature evaluation, customer satisfaction in the automotive industry and a framework for the analysis of vehicle data serve as application examples for the concrete use of data science. The book offers important information that is just as relevant for practitioners as for students and teachers.

Privacy-Preserving in Mobile Crowdsensing

Автор: Chuan Zhang, Tong Wu, Youqi Li, Liehuang Zhu
Название: Privacy-Preserving in Mobile Crowdsensing
ISBN: 9811983143 ISBN-13(EAN): 9789811983146
Издательство: Springer
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Цена: 149060.00 T
Наличие на складе: Есть у поставщика Поставка под заказ.
Описание: Mobile crowdsensing is a new sensing paradigm that utilizes the intelligence of a crowd of individuals to collect data for mobile purposes by using their portable devices, such as smartphones and wearable devices. Commonly, individuals are incentivized to collect data to fulfill a crowdsensing task released by a data requester. This “sensing as a service” elaborates our knowledge of the physical world by opening up a new door of data collection and analysis. However, with the expansion of mobile crowdsensing, privacy issues urgently need to be solved. In this book, we discuss the research background and current research process of privacy protection in mobile crowdsensing. In the first chapter, the background, system model, and threat model of mobile crowdsensing are introduced. The second chapter discusses the current techniques to protect user privacy in mobile crowdsensing. Chapter three introduces the privacy-preserving content-based task allocation scheme. Chapter four further introduces the privacy-preserving location-based task scheme. Chapter five presents the scheme of privacy-preserving truth discovery with truth transparency. Chapter six proposes the scheme of privacy-preserving truth discovery with truth hiding. Chapter seven summarizes this monograph and proposes future research directions. In summary, this book introduces the following techniques in mobile crowdsensing: 1) describe a randomizable matrix-based task-matching method to protect task privacy and enable secure content-based task allocation; 2) describe a multi-clouds randomizable matrix-based task-matching method to protect location privacy and enable secure arbitrary range queries; and 3) describe privacy-preserving truth discovery methods to support efficient and secure truth discovery. These techniques are vital to the rapid development of privacy-preserving in mobile crowdsensing.

Multimedia Data Mining

Автор: Zhang, Zhongfei
Название: Multimedia Data Mining
ISBN: 1584889667 ISBN-13(EAN): 9781584889663
Издательство: Taylor&Francis
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Цена: 112290.00 T
Наличие на складе: Нет в наличии.

Introduction to Data Systems: Building from Python

Автор: Bressoud Thomas, White David
Название: Introduction to Data Systems: Building from Python
ISBN: 3030543730 ISBN-13(EAN): 9783030543730
Издательство: Springer
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Цена: 46570.00 T
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Описание: Part I Foundation.- 1. Introduction.- 2. File Systems and File Processing.- 3. Python Native Data Structures.- 4. Regular Expressions.- Part II Data Systems: The Data Models.- 5. Data Systems Models.- 6. Tabular Model: Structure and Formats.- 7. Tabular Model: Access Operations and pandas.- 8. Tabular Model: Advanced Operations and pandas.- 9. Tabular Model: Transformations and Constraints.- 10. Relational Model: Structure and Architecture.- 11. Relational Operations: Single Table.- 12. Relational Operations: Multiple Tables.- 13. Relational Database Programming.- 14. Relational Model: Design, Constraints, and Creation.- 15. Hierarchical Model: Structure and Formats.- 16. Hierarchical Model: Operations and Programming.- 17. Hierarchical Model: Constraints.- Part III Data Systems: The Data Sources.- 18. Overview of Data Systems Sources.- 19. Networking and Client-Server.- 20. The HyperText Transfer Protocol.- 21. Interlude: Client Data Acquisition.- 22. Web Scraping.- 23. RESTful Application Programming Interfaces.- 24. Authentication and Authorization.

Data Mining Methods for the Content Analyst

Автор: Leetaru Kalev
Название: Data Mining Methods for the Content Analyst
ISBN: 0415895146 ISBN-13(EAN): 9780415895149
Издательство: Taylor&Francis
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Цена: 43890.00 T
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Описание: With continuous advancements and an increase in user popularity, data mining technologies serve as an invaluable resource for researchers across a wide range of disciplines in the humanities and social sciences. In this comprehensive guide, author and research scientist Kalev Leetaru introduces the approaches, strategies, and methodologies of current data mining techniques, offering insights for new and experienced users alike. Designed as an instructive reference to computer-based analysis approaches, each chapter of this resource explains a set of core concepts and analytical data mining strategies, along with detailed examples and steps relating to current data mining practices. Every technique is considered with regard to context, theory of operation and methodological concerns, and focuses on the capabilities and strengths relating to these technologies. In addressing critical methodologies and approaches to automated analytical techniques, this work provides an essential overview to a broad innovative field.

Introduction to data science.

Автор: Igual, Laura, Segu?, Santi
Название: Introduction to data science.
ISBN: 3319500163 ISBN-13(EAN): 9783319500164
Издательство: Springer
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Цена: 45610.00 T
Наличие на складе: Поставка под заказ.
Описание: The coverage spans key concepts adopted from statistics and machine learning, useful techniques for graph analysis and parallel programming, and the practical application of data science for such tasks as building recommender systems or performing sentiment analysis.

Introduction to Privacy-Preserving Data Publishing

Автор: Fung, Benjamin C.M. , Wang, Ke , Fu, Ada Wai-Che
Название: Introduction to Privacy-Preserving Data Publishing
ISBN: 0367383756 ISBN-13(EAN): 9780367383756
Издательство: Taylor&Francis
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Цена: 63280.00 T
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Описание:

Gaining access to high-quality data is a vital necessity in knowledge-based decision making. But data in its raw form often contains sensitive information about individuals. Providing solutions to this problem, the methods and tools of privacy-preserving data publishing enable the publication of useful information while protecting data privacy. Introduction to Privacy-Preserving Data Publishing: Concepts and Techniques presents state-of-the-art information sharing and data integration methods that take into account privacy and data mining requirements.





The first part of the book discusses the fundamentals of the field. In the second part, the authors present anonymization methods for preserving information utility for specific data mining tasks. The third part examines the privacy issues, privacy models, and anonymization methods for realistic and challenging data publishing scenarios. While the first three parts focus on anonymizing relational data, the last part studies the privacy threats, privacy models, and anonymization methods for complex data, including transaction, trajectory, social network, and textual data.





This book not only explores privacy and information utility issues but also efficiency and scalability challenges. In many chapters, the authors highlight efficient and scalable methods and provide an analytical discussion to compare the strengths and weaknesses of different solutions.


Privacy-Preserving Data Mining

Автор: Charu C. Aggarwal; Philip S. Yu
Название: Privacy-Preserving Data Mining
ISBN: 1441943714 ISBN-13(EAN): 9781441943712
Издательство: Springer
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Цена: 181670.00 T
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Описание: This book proposes a number of techniques to perform data mining tasks in a privacy-preserving way. The survey information included with each chapter is unique in terms of its focus on introducing the different topics more comprehensively.

Introduction to Environmental Data Science

Автор: William W. Hsieh
Название: Introduction to Environmental Data Science
ISBN: 1107065550 ISBN-13(EAN): 9781107065550
Издательство: Cambridge Academ
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Цена: 65470.00 T
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Описание: Statistical and machine learning methods have many applications in the environmental sciences, including prediction and data analysis in meteorology, hydrology and oceanography; pattern recognition for satellite images from remote sensing; management of agriculture and forests; assessment of climate change; and much more. With rapid advances in machine learning in the last decade, this book provides an urgently needed, comprehensive guide to machine learning and statistics for students and researchers interested in environmental data science. It includes intuitive explanations covering the relevant background mathematics, with examples drawn from the environmental sciences. A broad range of topics is covered, including correlation, regression, classification, clustering, neural networks, random forests, boosting, kernel methods, evolutionary algorithms and deep learning, as well as the recent merging of machine learning and physics. End?of?chapter exercises allow readers to develop their problem-solving skills, and online datasets allow readers to practise analysis of real data.

Social Media Mining

Автор: Zafarani
Название: Social Media Mining
ISBN: 1107018854 ISBN-13(EAN): 9781107018853
Издательство: Cambridge Academ
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Цена: 60180.00 T
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Описание: Social Media Mining integrates social media, social network analysis, and data mining to provide a coherent platform for students, practitioners, researchers and project managers to understand the basics and potentials of social media mining. It presents fundamental concepts, emerging issues, and effective algorithms for network analysis and data mining.

Discovering Knowledge in Data - An Introduction to Data Mining 2e

Автор: Larose
Название: Discovering Knowledge in Data - An Introduction to Data Mining 2e
ISBN: 0470908742 ISBN-13(EAN): 9780470908747
Издательство: Wiley
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Цена: 82310.00 T
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Machine learning and data science

Автор: Gutierrez, Daniel D.
Название: Machine learning and data science
ISBN: 1634620968 ISBN-13(EAN): 9781634620963
Издательство: Gazelle Book Services
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Цена: 72910.00 T
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Описание: A practitioners tools have a direct impact on the success of his or her work. This book will provide the data scientist with the tools and techniques required to excel with statistical learning methods in the areas of data access, data munging, exploratory data analysis, supervised machine learning, unsupervised machine learning and model evaluation. Machine learning and data science are large disciplines, requiring years of study in order to gain proficiency. This book can be viewed as a set of essential tools we need for a long-term career in the data science field recommendations are provided for further study in order to build advanced skills in tackling important data problem domains. The R statistical environment was chosen for use in this book. R is a growing phenomenon worldwide, with many data scientists using it exclusively for their project work. All of the code examples for the book are written in R. In addition, many popular R packages and data sets will be used.


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