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Rational points on elliptic curves / Joseph H. Silverman and John T. Tate.

By: Contributor(s): Series: Undergraduate texts in mathematicsPublication details: Switzerland : Springer, 2015.Edition: 2nd edDescription: xxii, 332 p. : illustrations ; 25 cmISBN:
  • 9783319185873
Subject(s): DDC classification:
  • 516.352 23 Si587
Contents:
Introduction -- 1. Geometry and Arithmetic -- 2. Points of Finite Order -- 3. The Group of Rational Points -- 4. Cubic Curves over Finite Fields -- 5. Integer Points on Cubic Curves -- 6. Complex Multiplication-- A. Projective geometry-- B. Transformation to weierstrass form-- List of noataion-- References-- Index.
Summary: This book stresses this interplay as it develops the basic theory, thereby providing an opportunity for advanced undergraduates to appreciate the unity of modern mathematics. At the same time, every effort has been made to use only methods and results commonly included in the undergraduate curriculum. This accessibility, the informal writing style, and a wealth of exercises make Rational Points on Elliptic Curves an ideal introduction for students at all levels who are interested in learning about Diophantine equations and arithmetic geometry. Most concretely, an elliptic curve is the set of zeroes of a cubic polynomial in two variables. If the polynomial has rational coefficients, then one can ask for a description of those zeroes whose coordinates are either integers or rational numbers. It is this number theoretic question that is the main subject of this book. Topics covered include the geometry and group structure of elliptic curves, the Nagell-Lutz theorem describing points of finite order, the Mordell-Weil theorem on the finite generation of the group of rational points, the Thue-Siegel theorem on the finiteness of the set of integer points, theorems on counting points with coordinates in finite fields, Lenstra's elliptic curve factorization algorithm, and a discussion of complex multiplication and the Galois representations associated to torsion points. Additional topics new to the second edition include an introduction to elliptic curve cryptography and a brief discussion of the stunning proof of Fermat's Last Theorem by Wiles et al. via the use of elliptic curves.
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Holdings
Item type Current library Call number Status Date due Barcode Item holds
Books ISI Library, Kolkata 516.352 Si587 (Browse shelf(Opens below)) Available 136483
Total holds: 0

Includes bibliographical references and index.

Introduction --
1. Geometry and Arithmetic --
2. Points of Finite Order --
3. The Group of Rational Points --
4. Cubic Curves over Finite Fields --
5. Integer Points on Cubic Curves --
6. Complex Multiplication--
A. Projective geometry--
B. Transformation to weierstrass form--
List of noataion--
References--
Index.

This book stresses this interplay as it develops the basic theory, thereby providing an opportunity for advanced undergraduates to appreciate the unity of modern mathematics. At the same time, every effort has been made to use only methods and results commonly included in the undergraduate curriculum. This accessibility, the informal writing style, and a wealth of exercises make Rational Points on Elliptic Curves an ideal introduction for students at all levels who are interested in learning about Diophantine equations and arithmetic geometry. Most concretely, an elliptic curve is the set of zeroes of a cubic polynomial in two variables. If the polynomial has rational coefficients, then one can ask for a description of those zeroes whose coordinates are either integers or rational numbers. It is this number theoretic question that is the main subject of this book. Topics covered include the geometry and group structure of elliptic curves, the Nagell-Lutz theorem describing points of finite order, the Mordell-Weil theorem on the finite generation of the group of rational points, the Thue-Siegel theorem on the finiteness of the set of integer points, theorems on counting points with coordinates in finite fields, Lenstra's elliptic curve factorization algorithm, and a discussion of complex multiplication and the Galois representations associated to torsion points. Additional topics new to the second edition include an introduction to elliptic curve cryptography and a brief discussion of the stunning proof of Fermat's Last Theorem by Wiles et al. via the use of elliptic curves.

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