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- Deep Learning for Coders with Fastai and PyTo...

Jeremy Howard is an entrepreneur, business strategist, developer, and educator, known for his contributions to the growth of deep learning and artificial intelligence. Sylvain is a former teacher and a Research Scientist at fast.ai, with a focus on making deep learning more accessible by designing and improving techniques that allow models to train fast on limited resources.
Deep Learning for Coders with Fastai and PyTorch: AI Applications Without a PhD
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IQD 71537
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Jeremy Howard is an entrepreneur, business strategist, developer, and educator, known for his contributions to the growth of deep learning and artificial intelligence. Sylvain is a former teacher and a Research Scientist at fast.ai, with a focus on making deep learning more accessible by designing and improving techniques that allow models to train fast on limited resources.
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تفاصيل المنتج
- Learn how to achieve impressive results in deep learning with little math background, small data, and minimal code using fastai and PyTorch
- Train models in various tasks such as computer vision, natural language processing, tabular data, and collaborative filtering
- Improve accuracy, speed, and reliability by understanding deep learning models and algorithms
- Discover how to turn models into web applications and consider the ethical implications of the work
- Book welcomes complete beginners and confident practitioners, requiring only coding knowledge, preferably in Python
- No experience coding? The early chapters are written for understanding without prior coding background, with explanations of the essential concepts
| Publisher | O'Reilly Media |
| Publication date | August 25, 2020 |
| Edition | 1st |
| Language | English |
| Print length | 621 pages |
| ISBN-10 | 1492045527 |
| ISBN-13 | 978-1492045526 |
| Item Weight | 2.31 pounds (1.05 kg) |
| Dimensions | 7.25 x 1 x 9.25 inches (18.4 x 2.5 x 23.5 cm) |
من يجب أن يشتري؟
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Beginner Data Scientists
Perfect for those new to data science, providing hands-on experience with deep learning concepts using practical examples.
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Educators and Trainers
Great resource for teaching AI concepts, emphasizing teaching through coding rather than abstract theory, making learning engaging.
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Practical AI Developers
Ideal for developers who want to implement AI solutions quickly without delving into advanced mathematical theories.
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Advanced Researchers
Not suitable for experts seeking in-depth mathematical derivations or theoretical foundations of deep learning concepts.
وصف المنتج
Deep Learning for Coders with Fastai and PyTorch: AI Applications Without a PhD
أسئلة العملاء & الإجابات
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سؤال:
What topics are covered in 'Deep Learning for Coders with fastai and PyTorch'?
إجابه: The book covers a broad range of topics essential for understanding deep learning, including the fundamentals of neural networks, practical applications of fastai and PyTorch, and techniques for implementing AI solutions without needing an advanced degree. Readers can expect to learn about image classification, natural language processing, and collaborative filtering among others. This hands-on approach is especially beneficial for beginners and practitioners who wish to apply deep learning to real-world challenges. -
سؤال:
Is prior programming experience necessary to understand this book?
إجابه: While prior programming experience can be helpful, it is not a strict requirement. The authors have structured the content with learners in mind, providing clear explanations and practical examples. If you have familiarity with Python, you will find it easier, but even those without extensive coding knowledge can follow along with the resource material. The emphasis on practical applications allows readers to build skills progressively, making this book suitable for a range of audiences. -
سؤال:
Who is the target audience for this book?
إجابه: The target audience for 'Deep Learning for Coders with fastai and PyTorch' includes aspiring data scientists, machine learning enthusiasts, and developers looking to dive into AI without formal training in the field. It is primarily designed for coders who want to leverage the fastai library and PyTorch framework to create their own deep learning models. However, educators and researchers can also find valuable insights in its practical approach to AI applications. -
سؤال:
What makes this book different from other deep learning resources?
إجابه: This book stands out due to its focus on practical applications of deep learning using the fastai library, which simplifies the process of model creation and training. Rather than a purely theoretical approach, it emphasizes learning through projects and real-world examples, providing readers with valuable context for each concept. Additionally, using PyTorch offers flexibility and ease of debugging, contributing to a more engaging learning experience. -
سؤال:
Can this book help me build a career in AI and machine learning?
إجابه: Yes, this book can significantly help you build a foundation for a career in AI and machine learning. By providing hands-on experience with real-world applications, it equips readers with the skills to develop machine learning projects from scratch. Completing the exercises and projects outlined throughout the book can enhance your portfolio, making you more attractive to potential employers in this rapidly growing field. -
سؤال:
How does the book approach teaching deep learning concepts?
إجابه: The book adopts a practical, project-based approach to teaching deep learning concepts, focusing on building models that solve specific problems. Each chapter includes projects that demonstrate concepts in action, allowing readers to solidify their understanding through hands-on coding. This methodology not only promotes engagement but also helps learners apply their knowledge to a variety of scenarios they may encounter in professional settings. -
سؤال:
What programming languages and tools should I know before starting the book?
إجابه: A familiarity with Python is the primary requirement before starting the book, as many examples and exercises are written in this language. Knowledge of basic programming concepts and experience with libraries such as NumPy and Pandas is advantageous but not mandatory. You'll also be introduced to fastai and PyTorch within the book, making it an excellent way to learn those tools alongside Python. -
سؤال:
What kind of projects can I expect to work on?
إجابه: You can expect to work on a variety of engaging projects that cover several domains such as image classification, text generation, and recommendation systems. These hands-on projects not only bolster your understanding of theory but also provide the opportunity to create real-world AI applications. By applying what you've learned, you will be able to develop a portfolio demonstrating practical AI skills that are highly regarded in the workforce. -
سؤال:
Is this book suitable for self-learning?
إجابه: Absolutely, this book is great for self-learning due to its well-structured content and clear explanations. Readers can work through the chapters at their own pace, revisiting complex topics as needed. The project-based format also allows for a hands-on learning experience, enabling you to apply concepts in practical scenarios. This self-directed approach caters to a variety of learning styles, making it an ideal resource for independent studies. -
سؤال:
Where can I buy Deep Learning for Coders with fastai and PyTorch: AI Applications Without a PhD 1st Edition in Iraq?
إجابه: You can buy 'Deep Learning for Coders with fastai and PyTorch: AI Applications Without a PhD 1st Edition' on Ubuy. Ubuy provides a convenient platform for purchasing this book, ensuring you receive it quickly and efficiently. As an established e-commerce site, Ubuy offers not only the book but also various related resources and products that can aid in your deep learning journey.
Neural Networks Editorial Review
This Fastai book is a great introduction to deep learning for beginners with minimum Python coding experience. The book focuses on providing the readers with adequate knowledge and experience in doing and building deep learning models with real data sets. It uses top-down teaching style, which may be confusing for those who have not taken traditional deep learning classes. However, the Fastai library is an efficient API, which saves a lot of time learning in the initial phase.
مراجعات العملاء وتقييماتهم
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5 نجمة
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4 نجمة
100%
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3 نجمة
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2 نجمة
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1 نجمة
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أضف تقييم لهذا المنتج
شارك أفكارك مع عملاء آخرين
إيجابيات
- Good introduction to deep learning for beginners
- Fastai library is a helpful API for beginners
- Easy and gentle explanation
- Provides fundamentals of machine learning, deep learning, data science, and AI
- Jupyter notebooks can be used as templates with your data to make your projects
سلبيات
- May be confusing for those without traditional deep learning classes exposure
منصة موثوقة وثقة كاملة للمشتري
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المميزات والفوائد
- Jeremy Howard is a well-known entrepreneur and business strategist
- Jeremy is a founding researcher at fast.ai and a Young Global Leader with the World Economic Forum.
- Sylvain is a Research Scientist at fast.ai, with a focus on making deep learning more accessible
- Sylvain wrote several books covering the entire curriculum which he was teaching in France.
- Sylvain taught computer science and mathematics for seven years
- Sylvain is an alumni from École Normale Supérieure (Paris, France) where he studied mathematics.
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