Auxiliary Equation with Repeated Roots

Auxiliary Equation with Repeated Roots
MATH 374 Lecture 16 Auxiliary Equation with Repeated Roots TexPoint fonts used in EMF. Read the TexPoint manual before you delete this box.: AAAAAAAA

5.2: The Auxiliary Equation: Repeated Roots
Given the nth order linear homogeneous differential equation with constant coefficients, f(D)y = 0, (1) suppose (D-b) appears as a factor of f(D), k times with 1 < k ≤ n. Then the auxiliary equation f(m) = 0 has a root b with multiplicity k, hence k roots are equal to b. 2

f(D)y = 0, (1) Repeated Roots Case Trying to apply the same method as in Section 5.1, we will run into trouble, as we need n linearly independent solutions of (1) to find the general solution of (1), and y = c1ebx + c2ebx + … + ckebx = cebx yields only “one” solution. 3

f(D)y = 0, (1) Repeated Roots Case Now, since (D-b)k is a factor of f(D), it follows that f(D) = g(D)(D-b)k (2) where g(D) yields the other n-k factors of f(D). Unfortunately, g(D) will give at most n-k solutions to (1), which means we will have at most n-k+1 < n (check!) linearly independent solutions of (1). Here is a way to get n linearly independent solutions of (1)!! 4

Repeated Roots - General Solution
f(D)y = 0, (1) Repeated Roots - General Solution Theorem 5.2: For the linear homogeneous differential equation of order n, (1), let m1, m2, … , mL be real distinct roots of the auxiliary equation: f(m) = 0 with multiplicities k1, k2, … , kL, respectively. Then the n functions: are linearly independent solutions of (1) and the general solution to (1) is: 5

f(D)y = 0, (1) Proof of Theorem 5.2: f(D) = g(D)(D-b)k (2) If mi is a root of f(m) = 0, of multiplicity ki, then (2) implies f(D) = gi(D)(D-mi)ki. It follows from Corollary 2 of Theorem 4.7 that for j = 0, 1, 2, … , ki – 1, f(D)(xj emix) = g(D)(D-mi)ki (xj emix) = 0. Since for each i = 1, 2, … , L, the functions emix , xemix , … , xki – 1 emix are linearly independent (HW problem # 6, p. 115), it follows (check) that we have n linearly independent solutions to (1).  6

Example 1: Solve y(5) – 5y(4) + 7y’’’ + y’’ – 8y’ + 4y = 0
Solution: The auxiliary equation is: m5 – 5m4 + 7m3 + m2 – 8m + 4 = 0. Factor LHS with synthetic division. (Possible rational roots are §1, §2, §4) 1 -5 7 -8 4 7

Solution: The auxiliary equation is: m5 – 5m4 + 7m3 + m2 – 8m + 4 = 0. Factor LHS with synthetic division. (Possible rational roots are §1, §2, §4) 1 -5 7 -8 4 -4 10

Solution: The auxiliary equation is: m5 – 5m4 + 7m3 + m2 – 8m + 4 = 0. Factor LHS with synthetic division. (Possible rational roots are §1, §2, §4) 1 -5 7 -8 4 -4 11

Solution: The auxiliary equation is: m5 – 5m4 + 7m3 + m2 – 8m + 4 = 0. Factor LHS with synthetic division. (Possible rational roots are §1, §2, §4) 1 -5 7 -8 4 -4 3 12

Solution: The auxiliary equation is: m5 – 5m4 + 7m3 + m2 – 8m + 4 = 0. Factor LHS with synthetic division. (Possible rational roots are §1, §2, §4) 1 -5 7 -8 4 -4 3 -3 22

Solution: The auxiliary equation is: m5 – 5m4 + 7m3 + m2 – 8m + 4 = 0. Factor LHS with synthetic division. (Possible rational roots are §1, §2, §4) 1 -5 7 -8 4 -4 3 -3 -1 29

Solution: The auxiliary equation is: m5 – 5m4 + 7m3 + m2 – 8m + 4 = 0. Factor LHS with synthetic division. (Possible rational roots are §1, §2, §4) 1 -5 7 -8 4 -4 3 -3 -1 m5 - 5m4 + 7m3 + m2 - 8m + 4 37

Solution: The auxiliary equation is: m5 – 5m4 + 7m3 + m2 – 8m + 4 = 0. Factor LHS with synthetic division. (Possible rational roots are §1, §2, §4) 1 -5 7 -8 4 -4 3 -3 -1 m5 - 5m4 + 7m3 + m2 - 8m + 4 = (m-1)(m4 – 4m3 + 3m2 + 4m - 4) 38

Solution: The auxiliary equation is: m5 – 5m4 + 7m3 + m2 – 8m + 4 = 0. Factor LHS with synthetic division. (Possible rational roots are §1, §2, §4) 1 -5 7 -8 4 -4 3 -3 -1 m5 - 5m4 + 7m3 + m2 - 8m + 4 = (m-1)(m4 – 4m3 + 3m2 + 4m - 4) = (m-1)2 (m3 – 3m2 + 4) 39

Solution: The auxiliary equation is: m5 – 5m4 + 7m3 + m2 – 8m + 4 = 0. Factor LHS with synthetic division. (Possible rational roots are §1, §2, §4) 1 -5 7 -8 4 -4 3 -3 -1 m5 - 5m4 + 7m3 + m2 - 8m + 4 = (m-1)(m4 – 4m3 + 3m2 + 4m - 4) = (m-1)2 (m3 – 3m2 + 4) = (m-1)2 (m+1) (m2 – 4m + 4) 40

Solution: The auxiliary equation is: m5 – 5m4 + 7m3 + m2 – 8m + 4 = 0. Factor LHS with synthetic division. (Possible rational roots are §1, §2, §4) 1 -5 7 -8 4 -4 3 -3 -1 m5 - 5m4 + 7m3 + m2 - 8m + 4 = (m-1)(m4 – 4m3 + 3m2 + 4m - 4) = (m-1)2 (m3 – 3m2 + 4) = (m-1)2 (m+1) (m2 – 4m + 4) 41

Solution: The auxiliary equation is: m5 – 5m4 + 7m3 + m2 – 8m + 4 = 0. Factor LHS with synthetic division. (Possible rational roots are §1, §2, §4) 1 -5 7 -8 4 -4 3 -3 -1 m5 - 5m4 + 7m3 + m2 - 8m + 4 = (m-1)(m4 – 4m3 + 3m2 + 4m - 4) = (m-1)2 (m3 – 3m2 + 4) = (m-1)2 (m+1) (m2 – 4m + 4) 42 = (m-1)2 (m+1) (m-2)2

Therefore, (m-1)2 (m+1) (m-2)2 = 0 ) m = 1, 1, -1, 2, 2. Thus, the general solution to this differential equation is y = c1 ex + c2 x ex + c3 e-x + c4 e2 x + c5 x e2x. 43

Auxiliary Equation with Repeated Roots

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