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Pattern Recognition and Machine Learning (Information Science and Statistics)
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This is the first textbook on pattern recognition to present the Bayesian viewpoint.
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Dettagli del prodotto
- First textbook on pattern recognition presenting the Bayesian viewpoint
- Includes approximate inference algorithms for fast answers in complex situations
- Utilizes graphical models to describe probability distributions
- Does not assume prior knowledge of pattern recognition or machine learning
- Requires familiarity with multivariate calculus and basic linear algebra
- Includes a self-contained introduction to basic probability theory
| Publisher | Springer |
| Publication date | August 23, 2016 |
| Edition | 2006th |
| Language | English |
| Print length | 798 pages |
| ISBN-10 | 1493938436 |
| ISBN-13 | 978-1493938438 |
| Item Weight | 2.88 pounds (1.31 kg) |
| Dimensions | 6.9 x 1.7 x 9.8 inches (17.5 x 4.3 x 24.9 cm) |
| Part of series | Information Science and Statistics |
A chi è consigliato?
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Data Scientists
This book is essential for data scientists seeking a deep understanding of machine learning algorithms and statistical methods.
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Graduate Students
Ideal for graduate students specializing in machine learning or statistical analysis, providing rigorous academic content and insights.
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Researchers
Researchers in pattern recognition will benefit from comprehensive concepts, methodologies, and advanced topics covered in this text.
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Beginners
Novices in programming or statistics may find the material too advanced without prior knowledge in these fields.
DESCRIZIONE DEL PRODOTTO
Pattern Recognition and Machine Learning (Information Science and Statistics)
Domande e risposte dei clienti
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Domanda:
What is the main focus of 'Pattern Recognition and Machine Learning'?
Risposta: The main focus of 'Pattern Recognition and Machine Learning' is on the statistical methods and techniques used in machine learning for pattern recognition tasks. This book provides an in-depth exploration of probabilistic models, including Bayesian networks and support vector machines, which are foundational in understanding how machines identify patterns and make predictions. It caters to readers who desire a thorough grounding in both theory and application, making it suitable for researchers and practitioners alike. For example, a data scientist can apply the methods discussed to analyze complex datasets in various fields like finance, healthcare, and image recognition. -
Domanda:
Who is the author of 'Pattern Recognition and Machine Learning'?
Risposta: The author of 'Pattern Recognition and Machine Learning' is Christopher M. Bishop, a well-known figure in machine learning and pattern recognition. His expertise and experience in the field add significant value to the book, offering readers insights from his extensive research and practical applications. Understanding the author's background helps readers appreciate the depth of knowledge presented in the text. For students and professionals seeking mentorship, Bishop's work can serve as a springboard into further exploration of machine learning techniques in real-world scenarios. -
Domanda:
What are the prerequisites for understanding the content in this book?
Risposta: To fully grasp the content of 'Pattern Recognition and Machine Learning,' readers are generally expected to have a basic understanding of linear algebra, probability, and statistics. Familiarity with programming and computational tools can also be beneficial for practical application of the techniques described. This foundational knowledge allows readers to navigate through complex algorithms and mathematical concepts presented in the book easily. For example, a graduate student in computer science would find this resource particularly useful when developing machine learning models for academic research. -
Domanda:
What topics are covered in the 2006 edition?
Risposta: The 2006 edition of 'Pattern Recognition and Machine Learning' covers a wide range of topics including supervised and unsupervised learning, graphical models, kernel machines, and neural networks. Each chapter delves into both theoretical concepts and practical examples, accompanied by exercises for a hands-on learning experience. By structuring the content around progressive learning, readers can build their understanding incrementally. For instance, practitioners can improve their knowledge of deep learning approaches used in modern applications like automated driving and facial recognition systems. -
Domanda:
Is this book suitable for beginners in machine learning?
Risposta: While 'Pattern Recognition and Machine Learning' provides an extensive overview of the field, it may not be the best choice for complete beginners due to its mathematical complexity. However, it is ideal for intermediate learners who already possess some background knowledge in statistics and data analysis. The book serves as a comprehensive resource for those looking to deepen their understanding of advanced topics in machine learning. For users who are new to the subject, pairing this book with introductory materials and online courses could enhance their overall comprehension. -
Domanda:
What makes this edition different from previous editions?
Risposta: The 2006 edition of 'Pattern Recognition and Machine Learning' introduces several new concepts and revisions based on advancements in the field since its earlier versions. It offers updated examples and references to recent research, which enhances its relevance for current students and professionals. Improvements in clarity and organization also help streamline the learning process. Users can expect a more comprehensive understanding of recent techniques and applications, particularly in big data and AI. This makes it an essential read for those working on cutting-edge machine learning projects. -
Domanda:
Can I find examples of real-world applications in this book?
Risposta: Yes, 'Pattern Recognition and Machine Learning' includes various real-world applications of machine learning and pattern recognition across different sectors such as healthcare, finance, and autonomous systems. Case studies and practical examples illustrate how theoretical concepts can be deployed in real-life scenarios. By bridging the gap between theory and practice, readers gain insights into the implementations of algorithms in solving complex problems. For aspiring data scientists, this aspect is crucial for developing robust machine learning solutions in their careers. -
Domanda:
Does the book provide exercises for practice?
Risposta: Yes, the book includes exercises at the end of each chapter, designed to test readers' understanding of the concepts discussed. These exercises range from theoretical questions to practical implementations, allowing readers to apply what they have learned. Engaging with these exercises can significantly enhance the learning experience, enabling readers to tackle real-world data sets and algorithms effectively. This is particularly beneficial for students in academic settings or professionals preparing for machine learning assessments and projects. -
Domanda:
In what format is 'Pattern Recognition and Machine Learning' available?
Risposta: The book 'Pattern Recognition and Machine Learning' is available in multiple formats, including hardcover, paperback, and eBook versions. This variety allows readers to choose a format that best suits their preferences or study habits. For instance, digital copies are great for on-the-go learning, while physical books may be preferable for those who like note-taking and annotating text. Accessing the book in different formats ensures that users can engage with the material comfortably and according to their own learning styles. -
Domanda:
Where can I buy 'Pattern Recognition and Machine Learning' in SE?
Risposta: You can purchase 'Pattern Recognition and Machine Learning' through Ubuy in SE. Ubuy offers a convenient online platform where you can find this edition along with various other resources related to pattern recognition and machine learning. With Ubuy's vast selection and user-friendly interface, finding and ordering the book is simple and efficient. This makes Ubuy a reliable choice for students and professionals looking to expand their knowledge in the field of machine learning.
Intelligence & Semantics Editorial Review
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Caratteristiche e benefici
- Book presents approximate inference algorithms.
- Uses graphical models to describe probability distributions.
- No prior knowledge of pattern recognition or machine learning required.
- Familiarity with multivariate calculus and basic linear algebra is required.
- Experience in the use of probabilities would be helpful though not essential.
- Self-contained introduction to basic probability theory included in the book.
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