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Produktinformationen "Synthetic Data for Deep Learning"

Data is the indispensable fuel that drives the decision making of everything from governments, to major corporations, to sports teams. Its value is almost beyond measure. But what if that data is either unavailable or problematic to access? That's where synthetic data comes in. This book will show you how to generate synthetic data and use it to maximum effect.Synthetic Data for Deep Learning begins by tracing the need for and development of synthetic data before delving into the role it plays in machine learning and computer vision. You'll gain insight into how synthetic data can be used to study the benefits of autonomous driving systems and to make accurate predictions about real-world data. You'll work through practical examples of synthetic data generation using Python and R, placing its purpose and methods in a real-world context. Generative Adversarial Networks (GANs) are also covered in detail, explaining how they work and their potential applications.After completing this book, you'll have the knowledge necessary to generate and use synthetic data to enhance your corporate, scientific, or governmental decision making.What You Will LearnCreate synthetic tabular data with R and PythonUnderstand how synthetic data is important for artificial neural networksMaster the benefits and challenges of synthetic dataUnderstand concepts such as domain randomization and domain adaptation related to synthetic data generationWho This Book Is ForThose who want to learn about synthetic data and its applications, especially professionals working in the field of machine learning and computer vision. This book will also be useful for graduate and doctoral students interested in this subject.

Untertitel
Generate Synthetic Data for Decision Making and Applications with Python and R

H | B | T | Gramm
254 mm | 178 mm | 14 mm | 460 gr

Erscheinungsjahr
2023

FSK
0

Ausgabe
Taschenbuch

Verlag
Apress

ISBN-10
1484285867

ISBN-13
9781484285862

Autor
Çelik, Sadullah; Necmi Gürsakal; Biri¿çi, Esma

Sprache
Englisch

Seitenanzahl
240

Themen
Maschinelles Lernen, Programmier- und Skriptsprachen, allgemein, Maschinelles Lernen

Verantwortliche Person gemäß Art. 16 GPSR
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