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Linear Algebra and Learning from Data
85% of respondents would recommend this to a friend
BOB 798
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Linear algebra and the foundations of deep learning, together at last!
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Detalles de producto
- Linear algebra and the foundations of deep learning, together at last! From Professor Gilbert Strang, acclaimed author of Introduction to Linear Algebra, comes Linear Algebra and Learning from Data, the first textbook that teaches linear algebra together with deep learning and neural nets. This readable yet rigorous textbook contains a complete course in the linear algebra and related mathematics that students need to know to get to grips with learning from data. Included are: the four fundamental subspaces, singular value decompositions, special matrices, large matrix computation techniques, compressed sensing, probability and statistics, optimization, the architecture of neural nets, stochastic gradient descent and backpropagation.
| Publisher | Wellesley-Cambridge Press |
| Publication date | January 31, 2019 |
| Edition | First Edition |
| Language | English |
| Print length | 446 pages |
| ISBN-10 | 0692196382 |
| ISBN-13 | 978-0692196380 |
| Item Weight | 2.05 pounds (930 grams) |
| Reading age | 18 years and up |
| Dimensions | 7.72 x 0.98 x 9.53 inches (19.6 x 2.5 x 24.2 cm) |
Who Should Buy?
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Engineering Students
Ideal for engineering students who require a strong foundation in linear algebra for applied technical courses.
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Data Scientists
Useful for data scientists looking to understand linear algebra concepts applied in machine learning and data analysis.
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Graduate Researchers
Beneficial for graduate researchers needing to apply linear algebra techniques in their thesis or research projects.
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Beginner Learners
Not suitable for absolute beginners who have no prior knowledge of mathematics or linear algebra concepts.
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Computer Vision & Pattern Recognition Editorial Review
"Linear Algebra and Learning from Data", written by renowned mathematician Gilbert Strang, promises to provide a solid link between linear algebra and statistical modeling. However, the book seems to have divided opinions among customers. While some customers praised the content of the book and found it to be an excellent resource for brushing up on linear algebra, others were disappointed with the overall quality. One reviewer mentioned that the Kindle formatting made the book unintelligible, while another criticized the printing quality, claiming it appeared to be a poorly printed PDF. Additionally, a customer who had taken Strang's linear algebra course in the past and purchased several of his earlier books described this particular book as disjointed, disorganized, repetitious, and unreadable. They suspected that the positive ratings were due to respect for Strang rather than the book's actual quality. Despite the mixed reviews, there were a few positive aspects highlighted by customers. Some praised the book's coverage of Principal Component Analysis and its high-level overview of Fast Fourier Transformation. The book was also noted to have a collection of applications of linear algebra, making it a valuable resource in that regard. Overall, it seems that the customer experience with "Linear Algebra and Learning from Data" is somewhat polarized. While some found it to be a helpful refresher and appreciated Strang's pedagogy, others were disappointed with the formatting, printing quality, and overall organization of the book.
Customer Reviews & Ratings
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5 estrella
84%
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4 estrella
11%
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3 estrella
1%
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2 estrella
1%
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1 estrella
3%
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ventajas
- Excellent coverage of Principal Component Analysis
- Provides a high-level overview of Fast Fourier Transformation
- Includes a collection of applications of linear algebra
Contras
- Kindle formatting made the book unintelligible
Product Price History
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BOB 798
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características y beneficios
- Combines linear algebra and deep learning in one textbook
- Covers the fundamental subspaces and singular value decompositions
- Includes topics like large matrix computation techniques and compressed sensing
- Addresses probability, statistics, and optimization for learning from data
- Provides insights into the architecture of neural nets and stochastic gradient descent
- Ideal for students looking to understand and apply deep learning concepts
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