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Schaum`s outline of differential geometry, Lipschutz, Martin M.


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Цена: 4803.00р.
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Наличие: Поставка под заказ.  Есть в наличии на складе поставщика.
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Автор: Lipschutz, Martin M.
Название:  Schaum`s outline of differential geometry
ISBN: 9780070379855
Издательство: McGraw-Hill
Классификация:

ISBN-10: 0070379858
Обложка/Формат: Hardback
Страницы: 288
Вес: 0.65 кг.
Дата издания: 01.01.1969
Язык: English
Размер: 274 x 208 x 15
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Поставляется из: Англии
Описание: Schaum`s Outlines present all the essential course information in an easy-to-follow, topic-by-topic format. You also get hundreds of examples, solved problems, and practice exercises to test your skills.


Discrete differential geometry preliminary entry 38

Название: Discrete differential geometry preliminary entry 38
ISBN: 3764386207 ISBN-13(EAN): 9783764386207
Издательство: Springer
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Цена: 4877.00 р.
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Описание: This is the first book on a newly emerging field of discrete differential geometry providing an excellent way to access this exciting area. It provides discrete equivalents of the geometric notions and methods of differential geometry, such as notions of curvature and integrability for polyhedral surfaces.

Functional Differential Geometry

Автор: Sussman Gerald Jay
Название: Functional Differential Geometry
ISBN: 0262019345 ISBN-13(EAN): 9780262019347
Издательство: Random House (USA)
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Цена: 7587.00 р.
Наличие на складе: Нет в наличии.

Описание:

An explanation of the mathematics needed as a foundation for a deep understanding of general relativity or quantum field theory.

Physics is naturally expressed in mathematical language. Students new to the subject must simultaneously learn an idiomatic mathematical language and the content that is expressed in that language. It is as if they were asked to read Les Miserables while struggling with French grammar. This book offers an innovative way to learn the differential geometry needed as a foundation for a deep understanding of general relativity or quantum field theory as taught at the college level.

The approach taken by the authors (and used in their classes at MIT for many years) differs from the conventional one in several ways, including an emphasis on the development of the covariant derivative and an avoidance of the use of traditional index notation for tensors in favor of a semantically richer language of vector fields and differential forms. But the biggest single difference is the authors' integration of computer programming into their explanations. By programming a computer to interpret a formula, the student soon learns whether or not a formula is correct. Students are led to improve their program, and as a result improve their understanding.


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