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Mathematics for Machine Learning
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Mathematics for Machine Learning

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ProduktVarenr.PrisHandling
Mathematics for Machine Learning9781108455145384,95 krTil butik
Mathematics for Machine Learning9781108455145439,95 krTil butik
Mathematics for Machine Learning9781108470049719,95 krTil butik
Mathematics for Machine Learning9781108470049829,95 krTil butik

Produktdetaljer

Mathematics for Machine Learning

Mathematics for Machine Learning

A. Aldo Faisal, Cheng Soon Ong og Marc Peter DeisenrothBog

384,95 kr

Til butik
Varenr.:
9781108455145

The fundamental mathematical tools needed to understand machine learning include linear algebra, analytic geometry, matrix decompositions, vector calculus, optimization, probability and statistics. These topics are traditionally taught in disparate courses, making it hard for data science or computer science students, or professionals, to efficiently learn the mathematics. This self-contained textbook bridges the gap between mathematical and machine learning texts, introducing the mathematical concepts with a minimum of prerequisites. It uses these concepts to derive four central machine learning methods: linear regression, principal component analysis, Gaussian mixture models and support vector machines. For studentsand otherswith a mathematical background, these derivations provide a starting point to machine learning texts. Forthoselearning the mathematics for the first time, the methods help build intuition and practical experience with applying mathematical concepts. Every chapter includes worked examples and exercises to test understanding. Programming tutorials are offered on the book's web site.

Læs mere hos Saxo DK
Mathematics for Machine Learning

Mathematics for Machine Learning

Marc Peter Deisenroth, A. Aldo Faisal og Cheng Soon OngMatematik og naturvidenskab

439,95 kr

Til butik
Varenr.:
9781108455145

The fundamental mathematical tools needed to understand machine learning include linear algebra, analytic geometry, matrix decompositions, vector calculus, optimization, probability and statistics. These topics are traditionally taught in disparate courses, making it hard for data science or computer science students, or professionals, to efficiently learn the mathematics. This self-contained textbook bridges the gap between mathematical and machine learning texts, introducing the mathematical concepts with a minimum of prerequisites. It uses these concepts to derive four central machine learning methods: linear regression, principal component analysis, Gaussian mixture models and support vector machines. For students and others with a mathematical background, these derivations provide a starting point to machine learning texts. For those learning the mathematics for the first time, the methods help build intuition and practical experience with applying mathematical concepts. Every chapter includes worked examples and exercises to test understanding. Programming tutorials are offered on the book's web site.

Læs mere hos Saxo DK
Mathematics for Machine Learning

Mathematics for Machine Learning

A. Aldo Faisal, Cheng Soon Ong og Marc Peter DeisenrothBog

719,95 kr

Til butik
Varenr.:
9781108470049

The fundamental mathematical tools needed to understand machine learning include linear algebra, analytic geometry, matrix decompositions, vector calculus, optimization, probability and statistics. These topics are traditionally taught in disparate courses, making it hard for data science or computer science students, or professionals, to efficiently learn the mathematics. This self-contained textbook bridges the gap between mathematical and machine learning texts, introducing the mathematical concepts with a minimum of prerequisites. It uses these concepts to derive four central machine learning methods: linear regression, principal component analysis, Gaussian mixture models and support vector machines. For studentsand otherswith a mathematical background, these derivations provide a starting point to machine learning texts. Forthoselearning the mathematics for the first time, the methods help build intuition and practical experience with applying mathematical concepts. Every chapter includes worked examples and exercises to test understanding. Programming tutorials are offered on the book's web site.

Læs mere hos Saxo DK
Mathematics for Machine Learning

Mathematics for Machine Learning

Marc Peter Deisenroth, A. Aldo Faisal og Cheng Soon OngMatematik og naturvidenskab

829,95 kr

Til butik
Varenr.:
9781108470049

The fundamental mathematical tools needed to understand machine learning include linear algebra, analytic geometry, matrix decompositions, vector calculus, optimization, probability and statistics. These topics are traditionally taught in disparate courses, making it hard for data science or computer science students, or professionals, to efficiently learn the mathematics. This self-contained textbook bridges the gap between mathematical and machine learning texts, introducing the mathematical concepts with a minimum of prerequisites. It uses these concepts to derive four central machine learning methods: linear regression, principal component analysis, Gaussian mixture models and support vector machines. For students and others with a mathematical background, these derivations provide a starting point to machine learning texts. For those learning the mathematics for the first time, the methods help build intuition and practical experience with applying mathematical concepts. Every chapter includes worked examples and exercises to test understanding. Programming tutorials are offered on the book's web site.

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