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Computer Vision
85% of respondents would recommend this to a friend
TWD 2781
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This modern treatment of computer vision focuses on learning and inference in probabilistic models as a unifying theme.
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產品詳情
- Focuses on learning and inference in probabilistic models
- Shows how to use training data to learn relationships between image data and aspects of the world
- Starts from basics of probability and model fitting and progresses to real examples
- Covers cutting-edge techniques like graph cuts, machine learning, and multiple view geometry
- Describes over 70 algorithms in sufficient detail to implement
- Includes more than 350 full-color illustrations and background mathematics
| Publisher | Cambridge Univ Pr |
| Publication date | August 30, 2012 |
| Edition | 1st |
| Language | English |
| Print length | 598 pages |
| ISBN-10 | 1107011795 |
| ISBN-13 | 978-1107011793 |
| Item Weight | 3.1 pounds (1.41 kg) |
| Dimensions | 7 x 1.3 x 10.1 inches (17.8 x 3.3 x 25.7 cm) |
Who Should Buy?
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Students
Ideal for students pursuing computer science or related fields, providing foundational knowledge of computer vision concepts and techniques.
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Research Professionals
Great for researchers in AI or robotics, offering advanced insights into current trends and methodologies in computer vision.
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Developers
Beneficial for software developers looking to implement computer vision applications, supplying practical examples and coding approaches.
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Casual Readers
Not suitable for casual readers due to technical depth, which may be overwhelming without a background in computer science.
產品描述
Computer Vision
客戶問題與解答
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問題:
What topics are covered in 'Computer Vision 1st Edition'?
Answer: The book covers a broad range of topics essential for understanding computer vision, including image processing techniques, feature extraction methods, and object recognition algorithms. Additionally, it delves into deep learning approaches that have transformed the field. The detailed explanations and practical examples throughout the chapters make complex concepts easier to grasp, benefiting students and professionals alike. For instance, readers can learn about the application of convolutional neural networks (CNNs) in image classification, which has become a fundamental technique in the industry. -
問題:
Who is the target audience for 'Computer Vision 1st Edition'?
Answer: 'Computer Vision 1st Edition' is primarily aimed at students, researchers, and practitioners in computer science, engineering, and related fields. It serves as a comprehensive resource for those new to the subject as well as those looking to deepen their expertise. The book’s structured approach allows beginners to build a solid foundation while offering advanced insights for experienced readers. Professionals working in AI and machine learning can also benefit from its practical applications and case studies, enabling them to implement computer vision techniques in real-world scenarios. -
問題:
Does 'Computer Vision 1st Edition' include practical exercises?
Answer: Yes, 'Computer Vision 1st Edition' includes a variety of practical exercises and problems throughout each chapter. These exercises are designed to reinforce theoretical concepts and provide hands-on experience with the techniques discussed. By working through these problems, readers can develop their coding skills and apply what they have learned to simulated projects. For instance, a student might implement an algorithm to detect faces in images, allowing them to connect theoretical knowledge with practical applications in software development and research. -
問題:
Is there any supplemental material available for 'Computer Vision 1st Edition'?
Answer: 'Computer Vision 1st Edition' often comes with supplemental materials such as MATLAB codes, Python examples, and data sets available online. These resources enhance the reader’s learning experience by providing practical implementation details. Students and practitioners can use these materials to experiment with algorithms and further their understanding of the subject. For example, having access to coding resources enables programmers to create their own computer vision projects, directly applying theories in developing smart applications. -
問題:
Can 'Computer Vision 1st Edition' help in preparing for competitions in AI?
Answer: Absolutely! 'Computer Vision 1st Edition' is an excellent resource for those looking to prepare for AI competitions, such as Kaggle challenges. The book provides insight into the algorithms and techniques used by industry professionals, equipping readers with the knowledge necessary to develop competitive models. Engaging with the content enhances critical thinking and problem-solving skills required for tackling unique challenges. For example, a participant can learn specific methods for image segmentation that can prove crucial in winning contests focused on vision-based tasks. -
問題:
What level of prior knowledge is needed to understand 'Computer Vision 1st Edition'?
Answer: 'Computer Vision 1st Edition' is designed with both beginners and intermediate learners in mind. While a basic understanding of programming and linear algebra is helpful, the book offers foundational concepts that lay the groundwork for more complex topics. It gradually builds in complexity, ensuring that readers can follow along. Those new to the field will find ample introductory material, while those with prior knowledge can delve into advanced theories. For example, readers not familiar with neural networks can start with simpler concepts before advancing to deep learning techniques. -
問題:
What programming languages are recommended for exercises in 'Computer Vision 1st Edition'?
Answer: The exercises in 'Computer Vision 1st Edition' are typically implemented in Python, given its popularity in the field of computer vision and machine learning. The book may also reference MATLAB for certain algorithm implementations. Python's extensive libraries, such as OpenCV and TensorFlow, make it an ideal choice for both beginners and seasoned developers. For instance, learners can utilize Python to create various visual recognition applications, gaining hands-on experience that reinforces theoretical knowledge. -
問題:
How does 'Computer Vision 1st Edition' address real-world applications?
Answer: 'Computer Vision 1st Edition' places a strong emphasis on real-world applications of computer vision techniques throughout its chapters. Case studies demonstrate how theoretical principles translate into practical solutions in various industries, such as healthcare, automotive, and robotics. For instance, the book discusses the use of image processing in medical imaging to aid diagnosis, illustrating how readers can leverage their knowledge to impact real-world problems positively. This focus ensures that learners can see the relevance of their studies in practical contexts. -
問題:
Where can I buy 'Computer Vision 1st Edition' in Taiwan?
Answer: You can buy 'Computer Vision 1st Edition' in Taiwan at Ubuy, which offers a wide selection of books and educational materials. Ubuy provides a seamless shopping experience, allowing you to browse and purchase the book with ease. Additionally, they often feature promotional deals that might be beneficial, further enhancing your purchasing options.
Computer Vision & Pattern Recognition Editorial Review
Computer Vision: Models, Learning, and Inference by Simon J. D. Prince is an ideal book for readers who already have some intermediate knowledge of machine learning and estimation theory. It is very well-organized and engagingly written by the author. All topics are presented in a concise and intuitive manner, with beautiful and helpful pictures that enhance the understanding of the concepts. The book never leaves the reader in the middle of the mathematical arguments and always takes them to the end with Consistent notation.
Customer Reviews & Ratings
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優點
- Well-organized and engagingly written
- Concise and intuitive presentation of topics
- Beautiful and helpful pictures
- Takes readers all the way through mathematical arguments
- Consistent notation
缺點
- Not suitable for readers without prior knowledge of estimation theory and machine learning Overall, Computer Vision: Models, Learning, and Inference is highly recommended for readers looking to expand their knowledge in computer vision and machine learning. Note: One negative review mentions boredom due to lack of real-world examples or intuition, but this seems to be an outlier.
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TWD 2781
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特色和優勢
- Learn relationships between observed image data and aspects of the world
- Exploit relationships to make new inferences about the world from new image data
- Cutting-edge techniques including graph cuts and machine learning
- Unified approach to common computer vision problems
- More than 70 algorithms for implementation
- Self-contained treatment with all background mathematics
- Over 350 full-color illustrations amplify the text
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