Machine Learning with Julia
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8 007,00 JPY
Typical price942,33 PLN
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2026-08-08
2026-08-15
| Aktualisiert am | Preis |
|---|---|
| 2026-08-08 | 66,00 |
| 2026-08-14 | 47,99 |
| 2026-08-15 | 66,00 |
| Verkäufer | Product price | Delivery | Gesamt | Verfügbarkeit | Updated | |
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| SP SpringerNatureLink Shop INT | 8 007,00 JPY | free | 8 007,00 JPY | Verfügbar | vor 2 Tagen | View offer |
| SP Springer Nature Author | 8 007,00 JPY | 29,00 JPY | 8 036,00 JPY | Verfügbar | vor 1 Woche | View offer |
| SP SpringerNatureLink Shop INT | 66,00 EUR | 29,00 EUR | 95,00 EUR | Verfügbar | vor 3 Tagen | View offer |
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EAN
9789819696895
Springer Nature
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This textbook offers a comprehensive and accessible introduction to machine learning with the Julia programming language. It bridges mathematical theory and real-world practice, guiding readers through both foundational concepts and advanced algorithms. Covering topics from essential principles like Kullback–Leibler divergence and eigen-analysis to cutting-edge techniques such as deep transfer learning and differential privacy, each chapter delivers clear explanations and detailed algorithmic treatments. Sample code accompanies every major topic, enabling hands-on learning and faster implementation. By leveraging Julia’s powerful machine learning ecosystem—including libraries such as Flux.jl, MLJ.jl, and more—this book empowers readers to build robust, state-of-the-art machine learning models. Ideal for students, researchers, and professionals alike, this textbook is designed for those seeking a solid theoretical foundation in machine learning, along with deep algorithmic insight and practical problem-solving inspiration.