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Probability and Statistics for Computer Science
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HKD 577
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Probability and Statistics for Computer Science features a comprehensive background in qualitative and quantitative data analysis, probability, random variables, and statistical methods, including machine learning.
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產品詳情
- This textbook is aimed at computer science undergraduates late in sophomore or early in junior year, supplying a comprehensive background in qualitative and quantitative data analysis, probability, random variables, and statistical methods, including machine learning.With careful treatment of topics that fill the curricular needs for the course, Probability and Statistics for Computer Science features:• A treatment of random variables and expectations dealing primarily with the discrete case.• A practical treatment of simulation, showing how many interesting probabilities and expectations can be extracted, with particular emphasis on Markov chains.• A clear but crisp account of simple point inference strategies (maximum likelihood; Bayesian inference) in simple contexts. This is extended to cover some confidence intervals, samples and populations for random sampling with replacement, and the simplest hypothesis testing.• Achapter dealing with classification, explaining why it’s useful; how to train SVM classifiers with stochastic gradient descent; and how to use implementations of more advanced methods such as random forests and nearest neighbors.• A chapter dealing with regression, explaining how to set up, use and understand linear regression and nearest neighbors regression in practical problems.• A chapter dealing with principal components analysis, developing intuition carefully, and including numerous practical examples. There is a brief description of multivariate scaling via principal coordinate analysis.• A chapter dealing with clustering via agglomerative methods and k-means, showing how to build vector quantized features for complex signals.Illustrated throughout, each main chapter includes many worked examples and other pedagogical elements such as boxed Procedures, Definitions, Useful Facts, and Remember This (short tips). Problems and Programming Exercises are at the end of each chapter, with a summary of what the reader should know. Instructor resources include a full set of model solutions for all problems, and an Instructor's Manual with accompanying presentation slides.
| Publisher | Springer |
| Publication date | June 4, 2019 |
| Edition | Reprint |
| Language | English |
| Print length | 391 pages |
| ISBN-10 | 3319877887 |
| ISBN-13 | 978-3319877884 |
| Item Weight | 1.94 pounds (880 grams) |
| Dimensions | 8.27 x 0.89 x 10.98 inches (21 x 2.3 x 27.9 cm) |
Who Should Buy?
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Computer Science Students
Ideal for undergraduate and graduate students seeking to understand the statistical foundations essential for data analysis in computing.
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Data Analysts
Beneficial for professionals who need to apply statistical methods to analyze data effectively and derive meaningful insights.
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Self-learners
Great for independent learners pursuing knowledge in probability and statistics without formal academic structure or guidance.
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Casual Readers
Not suitable for those looking for light or general reading, as it focuses heavily on technical content and applications.
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優點
- Clear explanations of concepts
- Useful examples and exercises
- Accessible for beginners
- Well-structured chapters
- Covers a broad range of topics
缺點
- Some sections could use more depth.
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特色和優勢
- Comprehensive coverage for computer science students.
- Focuses on qualitative and quantitative data analysis.
- Includes essential topics like probability, random variables, and statistical methods.
- Practical approaches to simulation and machine learning.
- Contains numerous worked examples and pedagogical elements.
- Instructor resources available with model solutions and presentation slides.
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