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№1 слайд![](/documents_6/63ef69ab8b0b73de22408a206e22e171/img0.jpg)
№2 слайд![Objectives Use the Rational](/documents_6/63ef69ab8b0b73de22408a206e22e171/img1.jpg)
Содержание слайда: Objectives:
Use the Rational Zero Theorem to find possible rational zeros.
Find zeros of a polynomial function.
Solve polynomial equations.
Use the Linear Factorization Theorem to find polynomials with given zeros.
Use Descartes’ Rule of Signs.
№3 слайд![The Rational Zero Theorem If](/documents_6/63ef69ab8b0b73de22408a206e22e171/img2.jpg)
Содержание слайда: The Rational Zero Theorem
If has
integer coefficients and (where is reduced to
lowest terms) is a rational zero of f, then p is a factor of the constant term, a0, and q is a factor of the leading coefficient, an.
№4 слайд![Example Using the Rational](/documents_6/63ef69ab8b0b73de22408a206e22e171/img3.jpg)
Содержание слайда: Example: Using the Rational Zero Theorem
List all possible rational zeros of
The constant term is –3 and the leading coefficient is 4.
Factors of the constant term, –3:
Factors of the leading coefficient, 4:
Possible rational zeros are:
№5 слайд![Example Finding Zeros of a](/documents_6/63ef69ab8b0b73de22408a206e22e171/img4.jpg)
Содержание слайда: Example: Finding Zeros of a Polynomial Function
Find all zeros of
We begin by listing all possible rational zeros.
Possible rational zeros =
We now use synthetic division to see if we can find a rational zero among the four possible rational zeros.
№6 слайд![Example Finding Zeros of a](/documents_6/63ef69ab8b0b73de22408a206e22e171/img5.jpg)
Содержание слайда: Example: Finding Zeros of a Polynomial Function
(continued)
Find all zeros of
Possible rational zeros are 1, –1, 2, and –2. We will use synthetic division to test the possible rational zeros.
Neither –2 nor –1 is a zero. We continue testing possible rational zeros.
№7 слайд![Example Finding Zeros of a](/documents_6/63ef69ab8b0b73de22408a206e22e171/img6.jpg)
Содержание слайда: Example: Finding Zeros of a Polynomial Function
(continued)
Find all zeros of
Possible rational zeros are 1, –1, 2, and –2. We will use synthetic division to test the possible rational zeros. We have found that –2 and –1 are not rational zeros. We continue testing with 1 and 2.
We have found a rational zero at x = 2.
№8 слайд![Example Finding Zeros of a](/documents_6/63ef69ab8b0b73de22408a206e22e171/img7.jpg)
Содержание слайда: Example: Finding Zeros of a Polynomial Function
(continued)
Find all zeros of
We have found a rational zero at x = 2.
The result of synthetic division is:
This means that
We now solve
№9 слайд![Example Finding Zeros of a](/documents_6/63ef69ab8b0b73de22408a206e22e171/img8.jpg)
Содержание слайда: Example: Finding Zeros of a Polynomial Function
(continued)
Find all zeros of
We have found that
We now solve
№10 слайд![Properties of Roots of](/documents_6/63ef69ab8b0b73de22408a206e22e171/img9.jpg)
Содержание слайда: Properties of Roots of Polynomial Equations
1. If a polynomial equation is of degree n, then counting multiple roots separately, the equation has n roots.
2. If a + bi is a root of a polynomial equation with real coefficients then the imaginary number
a – bi is also a root. Imaginary roots, if they exist, occur in conjugate pairs.
№11 слайд![Example Solving a Polynomial](/documents_6/63ef69ab8b0b73de22408a206e22e171/img10.jpg)
Содержание слайда: Example: Solving a Polynomial Equation
Solve
We begin by listing all possible rational roots:
Possible rational roots =
Possible rational roots are 1, –1, 13, and –13. We will use synthetic division to test the possible rational zeros.
№12 слайд![Example Solving a Polynomial](/documents_6/63ef69ab8b0b73de22408a206e22e171/img11.jpg)
Содержание слайда: Example: Solving a Polynomial Equation
(continued)
Solve
Possible rational roots are 1, –1, 13, and –13. We will use synthetic division to test the possible rational zeros.
x = 1 is a root for this polynomial.
We can rewrite the equation in factored form
№13 слайд![Example Solving a Polynomial](/documents_6/63ef69ab8b0b73de22408a206e22e171/img12.jpg)
Содержание слайда: Example: Solving a Polynomial Equation
(continued)
Solve
We have found that x = 1 is a root for this polynomial.
In factored form, the polynomial is
We now solve
We begin by listing all possible rational roots.
Possible rational roots =
Possible rational roots are 1, –1, 13, and –13. We will use synthetic division to test the possible rational zeros.
№14 слайд![Example Solving a Polynomial](/documents_6/63ef69ab8b0b73de22408a206e22e171/img13.jpg)
Содержание слайда: Example: Solving a Polynomial Equation
(continued)
Solve
Possible rational roots are 1, –1, 13, and –13. We will use synthetic division to test the possible rational zeros. Because –1 did not work for the original polynomial, it is not necessary to test that value.
The factored form of this polynomial is
№15 слайд![Example Solving a Polynomial](/documents_6/63ef69ab8b0b73de22408a206e22e171/img14.jpg)
Содержание слайда: Example: Solving a Polynomial Equation
(continued)
Solve
The factored form of this polynomial is
We will use the quadratic formula to solve
№16 слайд![The Fundamental Theorem of](/documents_6/63ef69ab8b0b73de22408a206e22e171/img15.jpg)
Содержание слайда: The Fundamental Theorem of Algebra
If f(x) is a polynomial of degree n, where then the equation f(x) = 0 has at least one complex root.
№17 слайд![The Linear Factorization](/documents_6/63ef69ab8b0b73de22408a206e22e171/img16.jpg)
Содержание слайда: The Linear Factorization Theorem
If where
and then
where c1, c2, ..., cn are complex numbers (possibly real and not necessarily distinct). In words: An nth-degree polynomial can be expressed as the product of a nonzero constant and n linear factors, where each linear factor has a leading coefficient of 1.
№18 слайд![Example Finding a Polynomial](/documents_6/63ef69ab8b0b73de22408a206e22e171/img17.jpg)
Содержание слайда: Example: Finding a Polynomial Function with Given Zeros
Find a third-degree polynomial function f(x) with real coefficients that has –3 and i as zeros and such that
f(1) = 8.
Because i is a zero and the polynomial has real coefficients, the conjugate, –i, must also be a zero. We can now use the Linear Factorization Theorem.
№19 слайд![Example Finding a Polynomial](/documents_6/63ef69ab8b0b73de22408a206e22e171/img18.jpg)
Содержание слайда: Example: Finding a Polynomial Function with Given Zeros
Find a third-degree polynomial function f(x) with real coefficients that has –3 and i as zeros and such that
f(1) = 8.
Applying the Linear Factorization Theorem, we found
that
№20 слайд![Descartes Rule of Signs Let](/documents_6/63ef69ab8b0b73de22408a206e22e171/img19.jpg)
Содержание слайда: Descartes’ Rule of Signs
Let
be a polynomial with real coefficients.
1. The number of positive real zeros of f is either
a. the same as the number of sign changes of f(x)
or
b. less than the number of sign changes of f(x) by a
positive even integer. If f(x) has only one
variation in sign, then f has exactly one positive
real zero.
№21 слайд![Descartes Rule of Signs](/documents_6/63ef69ab8b0b73de22408a206e22e171/img20.jpg)
Содержание слайда: Descartes’ Rule of Signs (continued)
Let
be a polynomial with real coefficients.
2. The number of negative real zeros of f is either
a. The same as the number of sign changes in f(–x)
or
b. less than the number of sign changes in f(–x) by
a positive even integer. If f(–x) has only one
variation in sign, then f has exactly one negative
real zero
№22 слайд![Example Using Descartes Rule](/documents_6/63ef69ab8b0b73de22408a206e22e171/img21.jpg)
Содержание слайда: Example: Using Descartes’ Rule of Signs
Determine the possible number of positive and negative real zeros of
1. To find possibilities for positive real zeros, count the number of sign changes in the equation for f(x).
There are 4 variations in sign.
The number of positive real zeros of f is either 4, 2, or 0.
№23 слайд![Example Using Descartes Rule](/documents_6/63ef69ab8b0b73de22408a206e22e171/img22.jpg)
Содержание слайда: Example: Using Descartes’ Rule of Signs
Determine the possible number of positive and negative real zeros of
2. To find possibilities for negative real zeros, count the number of sign changes in the equation for f(–x).
There are no variations in sign.
There are no negative real roots for f.