The Preserving Machine

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Publisher :
ISBN 13 : 9780586069387
Total Pages : 413 pages
Book Rating : 4.0/5 (693 download)

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Book Synopsis The Preserving Machine by : Philip K. Dick

Download or read book The Preserving Machine written by Philip K. Dick and published by . This book was released on 1969 with total page 413 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Privacy-Preserving Machine Learning

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Publisher : Simon and Schuster
ISBN 13 : 1617298042
Total Pages : 334 pages
Book Rating : 4.6/5 (172 download)

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Book Synopsis Privacy-Preserving Machine Learning by : J. Morris Chang

Download or read book Privacy-Preserving Machine Learning written by J. Morris Chang and published by Simon and Schuster. This book was released on 2023-05-02 with total page 334 pages. Available in PDF, EPUB and Kindle. Book excerpt: Keep sensitive user data safe and secure without sacrificing the performance and accuracy of your machine learning models. In Privacy Preserving Machine Learning, you will learn: Privacy considerations in machine learning Differential privacy techniques for machine learning Privacy-preserving synthetic data generation Privacy-enhancing technologies for data mining and database applications Compressive privacy for machine learning Privacy-Preserving Machine Learning is a comprehensive guide to avoiding data breaches in your machine learning projects. You’ll get to grips with modern privacy-enhancing techniques such as differential privacy, compressive privacy, and synthetic data generation. Based on years of DARPA-funded cybersecurity research, ML engineers of all skill levels will benefit from incorporating these privacy-preserving practices into their model development. By the time you’re done reading, you’ll be able to create machine learning systems that preserve user privacy without sacrificing data quality and model performance. Purchase of the print book includes a free eBook in PDF, Kindle, and ePub formats from Manning Publications. About the Technology Machine learning applications need massive amounts of data. It’s up to you to keep the sensitive information in those data sets private and secure. Privacy preservation happens at every point in the ML process, from data collection and ingestion to model development and deployment. This practical book teaches you the skills you’ll need to secure your data pipelines end to end. About the Book Privacy-Preserving Machine Learning explores privacy preservation techniques through real-world use cases in facial recognition, cloud data storage, and more. You’ll learn about practical implementations you can deploy now, future privacy challenges, and how to adapt existing technologies to your needs. Your new skills build towards a complete security data platform project you’ll develop in the final chapter. What’s Inside Differential and compressive privacy techniques Privacy for frequency or mean estimation, naive Bayes classifier, and deep learning Privacy-preserving synthetic data generation Enhanced privacy for data mining and database applications About the Reader For machine learning engineers and developers. Examples in Python and Java. About the Author J. Morris Chang is a professor at the University of South Florida. His research projects have been funded by DARPA and the DoD. Di Zhuang is a security engineer at Snap Inc. Dumindu Samaraweera is an assistant research professor at the University of South Florida. The technical editor for this book, Wilko Henecka, is a senior software engineer at Ambiata where he builds privacy-preserving software. Table of Contents PART 1 - BASICS OF PRIVACY-PRESERVING MACHINE LEARNING WITH DIFFERENTIAL PRIVACY 1 Privacy considerations in machine learning 2 Differential privacy for machine learning 3 Advanced concepts of differential privacy for machine learning PART 2 - LOCAL DIFFERENTIAL PRIVACY AND SYNTHETIC DATA GENERATION 4 Local differential privacy for machine learning 5 Advanced LDP mechanisms for machine learning 6 Privacy-preserving synthetic data generation PART 3 - BUILDING PRIVACY-ASSURED MACHINE LEARNING APPLICATIONS 7 Privacy-preserving data mining techniques 8 Privacy-preserving data management and operations 9 Compressive privacy for machine learning 10 Putting it all together: Designing a privacy-enhanced platform (DataHub)

The Preserving Machine and Other Stories, by Philip K. Dick

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Publisher :
ISBN 13 :
Total Pages : 314 pages
Book Rating : 4.:/5 (1 download)

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Book Synopsis The Preserving Machine and Other Stories, by Philip K. Dick by : Philip K. Dick

Download or read book The Preserving Machine and Other Stories, by Philip K. Dick written by Philip K. Dick and published by . This book was released on 1969 with total page 314 pages. Available in PDF, EPUB and Kindle. Book excerpt:

The Big Book of Preserving the Harvest

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Publisher : Storey Publishing
ISBN 13 : 1580174582
Total Pages : 353 pages
Book Rating : 4.5/5 (81 download)

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Book Synopsis The Big Book of Preserving the Harvest by : Carol W. Costenbader

Download or read book The Big Book of Preserving the Harvest written by Carol W. Costenbader and published by Storey Publishing. This book was released on 2002-08-15 with total page 353 pages. Available in PDF, EPUB and Kindle. Book excerpt: Learn how to preserve a summer day — in batches — from this classic primer on drying, freezing, canning, and pickling techniques. Did you know that a cluttered garage works just as well as a root cellar for cool-drying? That even the experts use store-bought frozen juice concentrate from time to time? With more than 150 easy-to-follow recipes for jams, sauces, vinegars, chutneys, and more, you’ll enjoy a pantry stocked with the tastes of summer year-round.

The Preserving Machine and Other Stories

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Publisher :
ISBN 13 :
Total Pages : 0 pages
Book Rating : 4.:/5 (115 download)

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Book Synopsis The Preserving Machine and Other Stories by : Philip K. Dick

Download or read book The Preserving Machine and Other Stories written by Philip K. Dick and published by . This book was released on 1972 with total page 0 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Preserving the Person

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Publisher : Regent College Publishing
ISBN 13 : 9781573830263
Total Pages : 186 pages
Book Rating : 4.8/5 (32 download)

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Book Synopsis Preserving the Person by : C. Stephen Evans

Download or read book Preserving the Person written by C. Stephen Evans and published by Regent College Publishing. This book was released on 1994-11 with total page 186 pages. Available in PDF, EPUB and Kindle. Book excerpt: The human quest for self-understanding is ancient. It transcends the boundaries between ordinary folk and philosophers and it over- laps with many academic disciplines, including psychology, sociology, philosophy and theology. Actually, the quest is not essentially academic; it is a human quest, pursued by persons in every age. With this in mind, philosopher C. Stephen Evans takes a look at the human sciences and their contribution to this self-understanding. Evans first presents a basic problem in these sciences today: the attack on the concept of personhood. He reviews the contemporary understanding of mind and brain: Is a person only a thinking machine or a programmed organism? Then he evaluates the impact of Auguste Comte, Sigmund Freud, J.B. Watson, B.F. Skinner and Emile Durkheim on what Evans terms ?

Preserving the World's Great Cities

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Publisher : Three Rivers Press
ISBN 13 :
Total Pages : 520 pages
Book Rating : 4.3/5 (91 download)

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Book Synopsis Preserving the World's Great Cities by : Anthony M. Tung

Download or read book Preserving the World's Great Cities written by Anthony M. Tung and published by Three Rivers Press. This book was released on 2001 with total page 520 pages. Available in PDF, EPUB and Kindle. Book excerpt: Both epic and intimate, this is the story of the fight to save the world’s architectural and cultural heritage as it is embodied in the extraordinary buildings and urban spaces of the great cities of Asia, the Americas, and Europe. Never before have the complexities and dramas of urban preservation been as keenly documented as inPreserving the World’s Great Cities. In researching this important work, Anthony Tung traveled throughout the world to visit remarkable buildings and districts in China, Italy, Greece, the U.S., Japan, and elsewhere. Everywhere he found both the devastating legacy of war, economics, and indifference and the accomplishments of people who have worked and sometimes risked their lives to preserve and renew the most meaningful urban expressions of the human spirit. From Singapore’s blind rush to become the most modern city of the East to Warsaw’s poignant and heroic effort to resurrect itself from the Nazis’ systematic campaign of physical and cultural obliteration, from New York and Rome to Kyoto and Cairo, we see the city as an expression of the best and worst within us. This is essential reading for fans of Jane Jacobs and Witold Rybczynski and everyone who is concerned about urban preservation.

Preserving on Paper

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Publisher : University of Toronto Press
ISBN 13 : 148751011X
Total Pages : 392 pages
Book Rating : 4.4/5 (875 download)

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Book Synopsis Preserving on Paper by : Kristine Kowalchuk

Download or read book Preserving on Paper written by Kristine Kowalchuk and published by University of Toronto Press. This book was released on 2017-06-30 with total page 392 pages. Available in PDF, EPUB and Kindle. Book excerpt: Apricot wine and stewed calf’s head, melancholy medicine and "ointment of roses." Welcome to the cookbook Shakespeare would have recognized. Preserving on Paper is a critical edition of three seventeenth-century receipt books–handwritten manuals that included a combination of culinary recipes, medical remedies, and household tips which documented the work of women at home. Kristine Kowalchuk argues that receipt books served as a form of folk writing, where knowledge was shared and passed between generations. These texts played an important role in the history of women’s writing and literacy and contributed greatly to issues of authorship, authority, and book history. Kowalchuk’s revelatory interdisciplinary study offers unique insights into early modern women’s writings and the original sharing economy.

Preserving Machine Music

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Publisher :
ISBN 13 :
Total Pages : 98 pages
Book Rating : 4.:/5 (426 download)

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Book Synopsis Preserving Machine Music by : Bevin Kelley

Download or read book Preserving Machine Music written by Bevin Kelley and published by . This book was released on 2009 with total page 98 pages. Available in PDF, EPUB and Kindle. Book excerpt:

Privacy-Preserving Deep Learning

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Publisher : Springer Nature
ISBN 13 : 9811637644
Total Pages : 81 pages
Book Rating : 4.8/5 (116 download)

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Book Synopsis Privacy-Preserving Deep Learning by : Kwangjo Kim

Download or read book Privacy-Preserving Deep Learning written by Kwangjo Kim and published by Springer Nature. This book was released on 2021-07-22 with total page 81 pages. Available in PDF, EPUB and Kindle. Book excerpt: This book discusses the state-of-the-art in privacy-preserving deep learning (PPDL), especially as a tool for machine learning as a service (MLaaS), which serves as an enabling technology by combining classical privacy-preserving and cryptographic protocols with deep learning. Google and Microsoft announced a major investment in PPDL in early 2019. This was followed by Google’s infamous announcement of “Private Join and Compute,” an open source PPDL tools based on secure multi-party computation (secure MPC) and homomorphic encryption (HE) in June of that year. One of the challenging issues concerning PPDL is selecting its practical applicability despite the gap between the theory and practice. In order to solve this problem, it has recently been proposed that in addition to classical privacy-preserving methods (HE, secure MPC, differential privacy, secure enclaves), new federated or split learning for PPDL should also be applied. This concept involves building a cloud framework that enables collaborative learning while keeping training data on client devices. This successfully preserves privacy and while allowing the framework to be implemented in the real world. This book provides fundamental insights into privacy-preserving and deep learning, offering a comprehensive overview of the state-of-the-art in PPDL methods. It discusses practical issues, and leveraging federated or split-learning-based PPDL. Covering the fundamental theory of PPDL, the pros and cons of current PPDL methods, and addressing the gap between theory and practice in the most recent approaches, it is a valuable reference resource for a general audience, undergraduate and graduate students, as well as practitioners interested learning about PPDL from the scratch, and researchers wanting to explore PPDL for their applications.

Preserving Fire

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Publisher :
ISBN 13 : 9781940696706
Total Pages : 0 pages
Book Rating : 4.6/5 (967 download)

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Book Synopsis Preserving Fire by : Philip Lamantia

Download or read book Preserving Fire written by Philip Lamantia and published by . This book was released on 2018 with total page 0 pages. Available in PDF, EPUB and Kindle. Book excerpt: "A selection of prose writing from American poet Philip Lamantia (1927-2005), edited by poet Garrett Caples"--

The Doomsday Machine

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Publisher : Bloomsbury Publishing USA
ISBN 13 : 1608196747
Total Pages : 433 pages
Book Rating : 4.6/5 (81 download)

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Book Synopsis The Doomsday Machine by : Daniel Ellsberg

Download or read book The Doomsday Machine written by Daniel Ellsberg and published by Bloomsbury Publishing USA. This book was released on 2017-12-05 with total page 433 pages. Available in PDF, EPUB and Kindle. Book excerpt: Shortlisted for the Andrew Carnegie Medal for Excellence in Nonfiction Finalist for The California Book Award in Nonfiction The San Francisco Chronicle's Best of the Year List Foreign Affairs Best Books of the Year In These Times “Best Books of the Year" Huffington Post's Ten Excellent December Books List LitHub's “Five Books Making News This Week” From the legendary whistle-blower who revealed the Pentagon Papers, an eyewitness exposé of the dangers of America's Top Secret, seventy-year-long nuclear policy that continues to this day. Here, for the first time, former high-level defense analyst Daniel Ellsberg reveals his shocking firsthand account of America's nuclear program in the 1960s. From the remotest air bases in the Pacific Command, where he discovered that the authority to initiate use of nuclear weapons was widely delegated, to the secret plans for general nuclear war under Eisenhower, which, if executed, would cause the near-extinction of humanity, Ellsberg shows that the legacy of this most dangerous arms buildup in the history of civilization--and its proposed renewal under the Trump administration--threatens our very survival. No other insider with high-level access has written so candidly of the nuclear strategy of the late Eisenhower and early Kennedy years, and nothing has fundamentally changed since that era. Framed as a memoir--a chronicle of madness in which Ellsberg acknowledges participating--this gripping exposé reads like a thriller and offers feasible steps we can take to dismantle the existing "doomsday machine" and avoid nuclear catastrophe, returning Ellsberg to his role as whistle-blower. The Doomsday Machine is thus a real-life Dr. Strangelove story and an ultimately hopeful--and powerfully important--book about not just our country, but the future of the world.

The Great Book-Swapping Machine

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Publisher :
ISBN 13 : 9780642279736
Total Pages : pages
Book Rating : 4.2/5 (797 download)

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Book Synopsis The Great Book-Swapping Machine by : Emma Allen

Download or read book The Great Book-Swapping Machine written by Emma Allen and published by . This book was released on 2021-09 with total page pages. Available in PDF, EPUB and Kindle. Book excerpt: Late one night, a thing appears in the paddock next to Fabio's house. His dad calls it 'space junk' but inside Fabio discovers books. Books about the galaxy; big, fat books; books full of poems. He swaps a book with Leila from next door and the thing becomes a Great Book-swapping Machine. But will the very important woman from the Space Agency let the community keep their machine? And what will happen when Fabio pulls its shiny red lever? Comprising a funny, original and imaginative story, whimsical illustrations and an informative fact section, The Book-swapping Machine is a book about the joys of reading and the importance of community.

Privacy-Preserving Machine Learning

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Publisher : Packt Publishing Ltd
ISBN 13 : 1800564228
Total Pages : 402 pages
Book Rating : 4.8/5 (5 download)

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Book Synopsis Privacy-Preserving Machine Learning by : Srinivasa Rao Aravilli

Download or read book Privacy-Preserving Machine Learning written by Srinivasa Rao Aravilli and published by Packt Publishing Ltd. This book was released on 2024-05-24 with total page 402 pages. Available in PDF, EPUB and Kindle. Book excerpt: Gain hands-on experience in data privacy and privacy-preserving machine learning with open-source ML frameworks, while exploring techniques and algorithms to protect sensitive data from privacy breaches Key Features Understand machine learning privacy risks and employ machine learning algorithms to safeguard data against breaches Develop and deploy privacy-preserving ML pipelines using open-source frameworks Gain insights into confidential computing and its role in countering memory-based data attacks Purchase of the print or Kindle book includes a free PDF eBook Book Description– In an era of evolving privacy regulations, compliance is mandatory for every enterprise – Machine learning engineers face the dual challenge of analyzing vast amounts of data for insights while protecting sensitive information – This book addresses the complexities arising from large data volumes and the scarcity of in-depth privacy-preserving machine learning expertise, and covers a comprehensive range of topics from data privacy and machine learning privacy threats to real-world privacy-preserving cases – As you progress, you’ll be guided through developing anti-money laundering solutions using federated learning and differential privacy – Dedicated sections will explore data in-memory attacks and strategies for safeguarding data and ML models – You’ll also explore the imperative nature of confidential computation and privacy-preserving machine learning benchmarks, as well as frontier research in the field – Upon completion, you’ll possess a thorough understanding of privacy-preserving machine learning, equipping them to effectively shield data from real-world threats and attacks What you will learn Study data privacy, threats, and attacks across different machine learning phases Explore Uber and Apple cases for applying differential privacy and enhancing data security Discover IID and non-IID data sets as well as data categories Use open-source tools for federated learning (FL) and explore FL algorithms and benchmarks Understand secure multiparty computation with PSI for large data Get up to speed with confidential computation and find out how it helps data in memory attacks Who this book is for – This comprehensive guide is for data scientists, machine learning engineers, and privacy engineers – Prerequisites include a working knowledge of mathematics and basic familiarity with at least one ML framework (TensorFlow, PyTorch, or scikit-learn) – Practical examples will help you elevate your expertise in privacy-preserving machine learning techniques

Ball Blue Book of Preserving

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Author :
Publisher : Alltrista Consumer Products
ISBN 13 : 9780972753708
Total Pages : 124 pages
Book Rating : 4.7/5 (537 download)

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Book Synopsis Ball Blue Book of Preserving by : Alltrista Consumer Products

Download or read book Ball Blue Book of Preserving written by Alltrista Consumer Products and published by Alltrista Consumer Products. This book was released on 2003 with total page 124 pages. Available in PDF, EPUB and Kindle. Book excerpt: Resource added for the Culinary Specialist program 313162.

The Ultimate Pasta Machine Cookbook

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Publisher : Harvard Common Press
ISBN 13 : 1592339484
Total Pages : 210 pages
Book Rating : 4.5/5 (923 download)

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Book Synopsis The Ultimate Pasta Machine Cookbook by : Lucy Vaserfirer

Download or read book The Ultimate Pasta Machine Cookbook written by Lucy Vaserfirer and published by Harvard Common Press. This book was released on 2020-08-04 with total page 210 pages. Available in PDF, EPUB and Kindle. Book excerpt: At last, a cookbook about pasta-making that covers all kinds of pasta machines—both manual and electric, and also stand-mixer pasta attachments—and that delivers foolproof recipes sure to make you an expert noodle master in no time! Homemade pasta is easy, fast, and fun. It tastes better than boxed pastas from the store. And, while-store-bought pastas do indeed come in a variety of shapes, they all have basically one bland and unexciting flavor; by contrast, as this wide-ranging and deliciously inventive book shows, making pasta by hand at home lets you create and enjoy dozens and dozens of different flavors of noodles. In her previous books—on such subjects as searing, marinating, and cast-iron cooking—chef, cooking teacher, and food blogger Lucy Vaserfirer has earned a reputation for expertly and gently translating the methods of master chefs into simple-to-follow, step-by-step instructions that let home cooks cook like the pros. Here, Lucy does the same for pasta-making, showing you how easy it is to use a sheeter or an extruder of any type, manual or electric, to create tasty pastas that will please everyone from grown-up gourmands to picky kids who want pasta at nearly every meal. Lucy shares in these pages terrific purees that you can make, using a blender or a mixing bowl, that you then can turn into all sorts of flavored pastas, from the familiar tomato or spinach pastas to noodles flavored with herbs like basil or tarragon, spices like pepper or saffron, and other flavors, such as a Sage Brown Butter Pasta that incorporates a flavored butter. She teaches you how to make every kind of pasta shape with your pasta machine, including ones you can't find in stores. She includes durum and semolina pastas, the most common kinds, as well as buckwheat, ancient-grain, and gluten-free pastas. She even shows how to make Asian noodles, such as udon, soba, and ramen, with your pasta machine. Whether you are a first-time owner of a pasta maker or a seasoned pro looking for exciting new ideas, this book has more than 100 splendid recipes, plus loads of clever tips and tricks, that will make you love your pasta machine and use it often.

Privacy-Preserving Machine Learning

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Author :
Publisher : Simon and Schuster
ISBN 13 : 1638352755
Total Pages : 334 pages
Book Rating : 4.6/5 (383 download)

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Book Synopsis Privacy-Preserving Machine Learning by : J. Morris Chang

Download or read book Privacy-Preserving Machine Learning written by J. Morris Chang and published by Simon and Schuster. This book was released on 2023-05-23 with total page 334 pages. Available in PDF, EPUB and Kindle. Book excerpt: Keep sensitive user data safe and secure without sacrificing the performance and accuracy of your machine learning models. In Privacy Preserving Machine Learning, you will learn: Privacy considerations in machine learning Differential privacy techniques for machine learning Privacy-preserving synthetic data generation Privacy-enhancing technologies for data mining and database applications Compressive privacy for machine learning Privacy-Preserving Machine Learning is a comprehensive guide to avoiding data breaches in your machine learning projects. You’ll get to grips with modern privacy-enhancing techniques such as differential privacy, compressive privacy, and synthetic data generation. Based on years of DARPA-funded cybersecurity research, ML engineers of all skill levels will benefit from incorporating these privacy-preserving practices into their model development. By the time you’re done reading, you’ll be able to create machine learning systems that preserve user privacy without sacrificing data quality and model performance. About the Technology Machine learning applications need massive amounts of data. It’s up to you to keep the sensitive information in those data sets private and secure. Privacy preservation happens at every point in the ML process, from data collection and ingestion to model development and deployment. This practical book teaches you the skills you’ll need to secure your data pipelines end to end. About the Book Privacy-Preserving Machine Learning explores privacy preservation techniques through real-world use cases in facial recognition, cloud data storage, and more. You’ll learn about practical implementations you can deploy now, future privacy challenges, and how to adapt existing technologies to your needs. Your new skills build towards a complete security data platform project you’ll develop in the final chapter. What’s Inside Differential and compressive privacy techniques Privacy for frequency or mean estimation, naive Bayes classifier, and deep learning Privacy-preserving synthetic data generation Enhanced privacy for data mining and database applications About the Reader For machine learning engineers and developers. Examples in Python and Java. About the Author J. Morris Chang is a professor at the University of South Florida. His research projects have been funded by DARPA and the DoD. Di Zhuang is a security engineer at Snap Inc. Dumindu Samaraweera is an assistant research professor at the University of South Florida. The technical editor for this book, Wilko Henecka, is a senior software engineer at Ambiata where he builds privacy-preserving software. Table of Contents PART 1 - BASICS OF PRIVACY-PRESERVING MACHINE LEARNING WITH DIFFERENTIAL PRIVACY 1 Privacy considerations in machine learning 2 Differential privacy for machine learning 3 Advanced concepts of differential privacy for machine learning PART 2 - LOCAL DIFFERENTIAL PRIVACY AND SYNTHETIC DATA GENERATION 4 Local differential privacy for machine learning 5 Advanced LDP mechanisms for machine learning 6 Privacy-preserving synthetic data generation PART 3 - BUILDING PRIVACY-ASSURED MACHINE LEARNING APPLICATIONS 7 Privacy-preserving data mining techniques 8 Privacy-preserving data management and operations 9 Compressive privacy for machine learning 10 Putting it all together: Designing a privacy-enhanced platform (DataHub)