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In algebra, synthetic division is a method for manually performing Euclidean division of polynomials, with less writing and fewer calculations than long division. It is mostly taught for division by linear monic polynomials (known as Ruffini's rule ), but the method can be generalized to division by any polynomial .
If one root r of a polynomial P(x) of degree n is known then polynomial long division can be used to factor P(x) into the form (x − r)Q(x) where Q(x) is a polynomial of degree n − 1. Q(x) is simply the quotient obtained from the division process; since r is known to be a root of P(x), it is known that the remainder must be zero.
Division can be calculated with an abacus. [14] Logarithm tables can be used to divide two numbers, by subtracting the two numbers' logarithms, then looking up the antilogarithm of the result. Division can be calculated with a slide rule by aligning the divisor on the C scale with the dividend on the D scale. The quotient can be found on the D ...
Long division is the standard algorithm used for pen-and-paper division of multi-digit numbers expressed in decimal notation. It shifts gradually from the left to the right end of the dividend, subtracting the largest possible multiple of the divisor (at the digit level) at each stage; the multiples then become the digits of the quotient, and the final difference is then the remainder.
Dividing by a matrix means, more precisely, multiplying by its inverse. Not all matrices have inverses. [29] For example, a matrix containing only zeros is not invertible. One can define a pseudo-division, by setting a/b = ab +, in which b + represents the pseudoinverse of b. It can be proven that if b −1 exists, then b + = b −1. If b ...
One can simplify the classification of monomial orders by assuming that the indeterminates are named x 1, x 2, x 3, ... in decreasing order for the monomial order considered, so that always x 1 > x 2 > x 3 > .... (If there should be infinitely many indeterminates, this convention is incompatible with the condition of being a well ordering, and ...
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Given an integer a and a non-zero integer d, it can be shown that there exist unique integers q and r, such that a = qd + r and 0 ≤ r < | d |. The number q is called the quotient, while r is called the remainder. (For a proof of this result, see Euclidean division. For algorithms describing how to calculate the remainder, see division algorithm.)