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A short elementary proof of the Ruffini
A short elementary proof of the Ruffini

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Algebraic Numbers and Algebraic Integers

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Polynomial Resultants - University of Puget Sound

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a basis for free lie rings and higher commutators in free groups

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Factors of the Gaussian Coefficients

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CDM Finite Fields Outline Where Are We?

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What We Need to Know about Rings and Modules

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Smith-McMillan Form for Multivariable Systems

Some known results on polynomial factorization over towers of field
Some known results on polynomial factorization over towers of field

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Chapter 12 Algebraic numbers and algebraic integers

Chapter 6, Ideals and quotient rings Ideals. Finally we are ready to
Chapter 6, Ideals and quotient rings Ideals. Finally we are ready to

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MATH 431 PART 3: IDEALS, FACTOR RINGS - it

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1. Ideals ∑

Ordered Rings and Fields - University of Arizona Math
Ordered Rings and Fields - University of Arizona Math

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Inversion Modulo Zero-dimensional Regular Chains

Prime and maximal ideals in polynomial rings
Prime and maximal ideals in polynomial rings

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Gröbner basis

In mathematics, and more specifically in computer algebra, computational algebraic geometry, and computational commutative algebra, a Gröbner basis is a particular kind of generating set of an ideal in a polynomial ring over a field K[x1, ..,xn]. A Gröbner basis allows many important properties of the ideal and the associated algebraic variety to be deduced easily, such as the dimension and the number of zeros when it is finite. Gröbner basis computation is one of the main practical tools for solving systems of polynomial equations and computing the images of algebraic varieties under projections or rational maps.Gröbner basis computation can be seen as a multivariate, non-linear generalization of both Euclid's algorithm for computing polynomial greatest common divisors, andGaussian elimination for linear systems.Gröbner bases were introduced in 1965, together with an algorithm to compute them (Buchberger's algorithm), by Bruno Buchberger in his Ph.D. thesis. He named them after his advisor Wolfgang Gröbner. In 2007, Buchberger received the Association for Computing Machinery's Paris Kanellakis Theory and Practice Award for this work.However, the Russian mathematician N. M. Gjunter had introduced a similar notion in 1913, published in various Russian mathematical journals. These papers were largely ignored by the mathematical community until their rediscovery in 1987 by Bodo Renschuch et al. An analogous concept for local rings was developed independently by Heisuke Hironaka in 1964, who named them standard bases.The theory of Gröbner bases has been extended by many authors in various directions. It has been generalized to other structures such as polynomials over principal ideal rings or polynomial rings, and also some classes of non-commutative rings and algebras, like Ore algebras.
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