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Mathematical Methods in Data Science
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Mathematical Methods in Data Science

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ProduktVarenr.PrisHandling
Mathematical Methods in Data Science9781009509404494,95 krTil butik
Mathematical Methods in Data Science9781009509404559,95 krTil butik

Produktdetaljer

Mathematical Methods in Data Science

Mathematical Methods in Data Science

Sébastien RochBog

494,95 kr

Til butik
Varenr.:
9781009509404

Bridge the gap between theoretical concepts and their practical applications with this rigorous introduction to the mathematics underpinning data science. It covers essential topics in linear algebra, calculus and optimization, and probability and statistics, demonstrating their relevance in the context of data analysis. Key application topics include clustering, regression, classification, dimensionality reduction, network analysis, and neural networks. What sets this text apart is its focus on hands-on learning. Each chapter combines mathematical insights with practical examples, using Python to implement algorithms and solve problems. Self-assessment quizzes, warm-up exercises and theoretical problems foster both mathematical understanding and computational skills. Designed for advanced undergraduate students and beginning graduate students, this textbook serves as both an invitation to data science for mathematics majors and as a deeper excursion into mathematics for data science students.

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Mathematical Methods in Data Science

Mathematical Methods in Data Science

Sébastien RochMatematik og naturvidenskab

559,95 kr

Til butik
Varenr.:
9781009509404

Bridge the gap between theoretical concepts and their practical applications with this rigorous introduction to the mathematics underpinning data science. It covers essential topics in linear algebra, calculus and optimization, and probability and statistics, demonstrating their relevance in the context of data analysis. Key application topics include clustering, regression, classification, dimensionality reduction, network analysis, and neural networks. What sets this text apart is its focus on hands-on learning. Each chapter combines mathematical insights with practical examples, using Python to implement algorithms and solve problems. Self-assessment quizzes, warm-up exercises and theoretical problems foster both mathematical understanding and computational skills. Designed for advanced undergraduate students and beginning graduate students, this textbook serves as both an invitation to data science for mathematics majors and as a deeper excursion into mathematics for data science students.

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