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Mathematics for Machine Learning
87% of respondents would recommend this to a friend
BAM 230
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This self-contained textbook bridges the gap between mathematical and machine learning texts, introducing the mathematical concepts with a minimum of prerequisites
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Detalji o proizvodu
- Covers fundamental mathematical tools essential for understanding machine learning
- Integrates mathematical concepts with machine learning methods like linear regression, principal component analysis, etc.
- Helps bridge the gap between mathematical and machine learning texts
- Suitable for data science, computer science students, or professionals
- Includes worked examples, exercises, and programming tutorials for practical understanding
- Provides a self-contained approach with minimal prerequisites
| Publisher | Cambridge University Press |
| Publication date | April 23, 2020 |
| Edition | 1st |
| Language | English |
| Print length | 398 pages |
| ISBN-10 | 1108470041 |
| ISBN-13 | 978-1108470049 |
| Item Weight | 2.16 pounds (980 grams) |
| Dimensions | 7 x 1.11 x 10 inches (17.8 x 2.8 x 25.4 cm) |
| Part of series | Studies in Natural Language Processing |
Who Should Buy?
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Aspiring Data Scientists
Those looking to strengthen their mathematical background essential for understanding machine learning concepts and algorithms.
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Undergraduate Students
Students pursuing degrees in mathematics or computer science needing a foundational understanding of mathematical principles in ML.
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Self-Learners
Individuals interested in self-study who want a comprehensive introduction to the mathematics involved in machine learning.
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Advanced Practitioners
Experienced practitioners in machine learning seeking advanced or specialized mathematical topics may find it too basic.
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Odgovor: Da, u Ubuy Bosnia and Herzegovina ovaj proizvod je dostupan za kupovinu po razumnoj cijeni.. Mathematics for Machine Learning nije dostupan lokalno, ali možete nam povjeriti naše usluge ekspresne dostave. -
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Computer Vision & Pattern Recognition Editorial Review
The "Mathematics for Machine Learning" book is a comprehensive resource for those looking to refresh their knowledge of linear algebra and calculus in the context of machine learning. It effectively lays out the necessary mathematical concepts and provides a good introduction to important algorithms in machine learning. However, the book falls short in certain areas. It lacks proofs and explanations for many properties and extensions, making it difficult for readers to fully grasp the concepts. Additionally, it does not cover fundamental theories in machine learning such as PAC learning, VC dimensions, and the No Free Lunch theorem. While the book is a good refresher for those already familiar with the mathematics in machine learning and offers insights into the mathematical intuitions behind popular ML algorithms, it is not beginner-friendly for those without a solid foundation in linear algebra. Overall, "Mathematics for Machine Learning" is a valuable resource for those seeking to understand the mathematical background of machine learning concepts, but it may require additional reading of dedicated mathematics textbooks to form a sound mathematical foundation.
Customer Reviews & Ratings
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5 zvijezda
77%
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4 zvijezda
15%
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3 zvijezda
3%
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2 zvijezda
2%
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1 zvijezda
3%
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Pros
- Provides a comprehensive overview of the necessary mathematical concepts
- Introduces important algorithms in machine learning
Cons
- Lacks proofs and explanations for many properties and extensions
Product Price History
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BAM 230
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Karakteristike i prednosti
- Textbook covers the fundamental mathematical tools required for understanding machine learning
- Introduces mathematical concepts with minimum prerequisites
- Uses concepts to derive four central machine learning methods
- Includes worked examples and exercises in every chapter
- Programming tutorials offered on book's website
- Suitable for students with mathematical background or those learning the mathematics for the first time
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