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algebraic geometry
(redirected from Polynomial equation)

   Also found in: Wikipedia 0.12 sec.
algebraic geometry, branch of geometry geometry [Gr.,=earth measuring], branch of mathematics concerned with the properties of and relationships between points, lines, planes, and figures and with generalizations of these concepts.
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, based on analytic geometry analytic geometry, branch of geometry in which points are represented with respect to a coordinate system, such as Cartesian coordinates , and in which the approach to geometric problems is primarily algebraic.
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, that is concerned with geometric objects (loci) defined by algebraic relations among their coordinates (see Cartesian coordinates Cartesian coordinates (kärtē`zhən)
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). In plane geometry an algebraic curve is the locus of all points satisfying the polynomial polynomial, mathematical expression which is a finite sum, each term being a constant times a product of one or more variables raised to powers. With only one variable the general form of a polynomial is a0xn+a
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 equation f(x,y)=0; in three dimensions the polynomial equation f(x,y,z)=0 defines an algebraic surface. In general, points in n-space are defined by ordered sequences of numbers (x1,x2,x3, … xn), where each n-tuple specifies a unique point and x1, x2, x3, … xn are members of a given field field, in algebra, set of elements (usually numbers) that may be combined under the operations of addition and multiplication so that it constitutes an additive group , the nonzero elements form a multiplicative group, and multiplication distributes over addition.
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 (e.g., the complex numbers). An algebraic hypersurface is the locus of all such points satisfying the polynomial equation f(x1,x2,x3, … xn)=0, whose coefficients are also chosen from the given field. The intersection of two or more algebraic hypersurfaces defines an algebraic set, or variety, a concept of particular importance in algebraic geometry.

algebraic geometry

Study of geometric objects expressed as equations and represented by graphs in a given coordinate system. In contrast to Euclidean geometry, algebraic geometry represents geometric objects using algebraic equations (e.g., a circle of radius r is defined by x2 + y2 = r2). Objects so defined can then be analyzed for symmetries, intercepts, and other properties without having to refer to a graph.



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His delved into symmetries of polynomial equations and took fourth place.
The limits of the experimental region are defined by: [Mathematical Expression Omitted] The coefficients of the polynomial equation are optimized for the best fit within the experimental region and cannot be relied upon for extrapolation outside it.
Polynomial equations are central to a variety of application areas including robotics, coding theory, cryptography and signal processing.
 
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