Belonging to 1 and 1, respectively, to obtain the solutions
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ExercisesIn Exercises 1 – 4, find a fundamental matrix solution of the system. 2 2 y′ = 1 x + 3 y; x′ = 3 x + 1 y 2 2 Answer x′ = —3x + y y′ = —5x — y; — — x′ = 2x 4y y′ = 5x 2y; Answer x′ = —x — y y′ = x — 3y; In each of Exercises 5 – 8, use the method of variation of constants to find a particular solution of the system of ODEs, and then write down the general solution. Fundamental matrix solutions of the associated homoge- neous systems were found in Exercises 1 – 4. 2 2 y′ = 1 x + 3 y + b2(t), x′ = 3 x + 1 y + b1(t) where b1 b2 b1 2 2 et = et . = et . b2 b1 b2 6. — — Answer —et 0 = tet . x′ + 3x y = 3e—2t 0 y′ + 5x + y = e—2t x′ y′ Answer 2 —4 = 5 —2 x y + —32 cos(4t) . x′ y′ 1 1 + —1 3 x y b1(t) = b2(t) , where b1(t) b2(t) b1(t) b2(t) = e—2t 1 . 3 0 = 2e—2t . Show that X = 2t2 t3 —t2 —t3 is a fundamental matrix solution of — tx′ = x 2y ty′ = x + 4y. Using variation of constants, find a particular solution of — tx′ = x 2y + b1(t) ty′ = x + 4y + b2(t), where 2t b1(t) b2(t) = t . b1(t) b2(t) t3 = . —t3 Warning: the variation of constants formula is based on the assump- tion that the system has the form →v′ = A(t)→v +→b(t); the system in this Exercise must be written in that form before the formula can be used. However, if you use the method of variation of constants there are no worries. Answer Find the general solution of each of the following inhomogeneous systems. (b) x′ = x + y + t—1 y′ = —x — y. x′ = x + y + t—1 y′ = —(x + y + t—1). (c) x′ = 4x + 5y + 5 sin(3t) (d) y′ = —5x — 4y + 3 cos(3t) — 4 sin(3t) x′ = sec3(t) — y y′ = x — sec3(t) X X Let C be a constant matrix, and suppose that (t) is a matrix solution of →v′ = A(t)v. Show that C is also a matrix solution. Answer Let X1(t) and X2(t) be fundamental matrix solutions of the linear system of differential equations →v′ = A(t)→v, defined on an interval I. Show that X1—1 · X2 is a constant matrix. × Let Q be an n n matrix. Show that Q is nonsingular if and only if the columns of q are linearly independent. Answer A Fundamental Matrix Solution of InterestThe Maclaurin series expansion for the function eat is eat 2 a = 1 + a t + 2! t2 3 a + 3! t3 n a + · · · + n! tn + · · · , and it converges for all values of t. Now consider the series with the scalar constant a replaced by a con- stant matrix A. By convention, A0 = I is the identity matrix, A1 = A, A2 = A × A, etc. The first thing to consider is convergence. Let pij,k denote the i,jth entry of Ak. Since A0 = I, and A1 = A, pij,0 = 1 if i = j , 0 if i /= j × pij,1 = aij, and so on. Equation (3.25) defines eAt to be the m m matrix whose i,jth entry is p ∞ 1 k k! ij(t) = ∑ pij,k t , (3.26) k=0 provided that this series is convergent for each i, j. × Theorem 3.12 For any m m matrix A, the series (3.26) converges for all i, j and for all values of t. PROOF. We will show that for any i, j, ∞ 1 ∑ k=0 k! p tk (3.27) | | ≤ ij,k is convergent. Choose a number B such that for each entry aij of A, aij B. We’ll see that |pij,k| ≤ mk—1Bk for k ≥ 1. (3.28) The proof of (3.28) is by mathematical induction. If k = 1, (3.28) holds because |pij,1| = |aij| ≤ B. Let k ≥ 2, and assume that (3.28) holds for the power k — 1; that is k 2 k 1 |pij,k—1| ≤ m — B — . Since Ak = A · Ak—1, pij,k = ai1 p1j,k—1 + ai2 p2j,k—1 + · · · + aim pmj,k—1. Starting with the triangle inequality, we have |pij,k | ≤ |ai1||p1j,k—1| + |ai2||p2j,k—1| + · · · + |aim ||pmj,k—1| ≤ B · mk—2Bk—1 + B · mk—2Bk—1 + · · · + B · mk—2Bk—1 = `mk—1 Bk. m te˛r¸ms x — Therefore, if (3.28) holds for the power k 1, then it holds for the kth power as well. By the principle of mathematical induction, (3.28) is valid for all k ≥ 1. Then k 1 k 1 k m — B k k! |pij,kt | ≤ k! |t |, which implies that the series (3.27) is dominated by the series ∞ mk—1 Bk k ∑ k=0 k! |t| . m The latter series converges since it is the Maclaurin series expansion of f (t) = 1 emB|t|. By the comparison test, the series (3.27) also converges. This means that the series (3.26) defining pij converges absolutely. Since every absolutely convergent series is convergent, the proof is complete. As a simple example, suppose that Z denotes the zero matrix (all entries equal 0). Then the only nonzero term in the series 2 I + Zt + 1 Z2t2 + · · · defining eZt is I. It follows that eZt = I. The next example is also fairly simple, because the series has only a finite number of nonzero terms. Example 3.5.1 LetCalculate eAt. 0 1 0 A = 0 0 1 0 0 0 . Solution. By matrix multiplication, A2 = and Ak = 0 for k ≥ 3. Hence 0 0 1 0 0 0 0 0 0 , eAt = I + At + 1 (A)2t2 2 = 1 t 1 t2 2 0 1 t 0 0 1 Example 3.5.2 Calculate eAt, where 0 2 A = 1 0 . Solution. If B = a 0 and C = c 0 0 b 0 d are diagonal matrices, you can readily verify that 0 bd BC = ac 0 . A = . Thus, the product of two diagonal matrices is also a diagonal matrix. The diagonal entries of the product matrix are obtained simply by multiplying the respective diagonal entries of B and C. It follows that we can find the nth power of a diagonal matrix by raising each diagonal entry to the nth power: Thus n 1n 0 0 2n eAt ∞ 1 k k k! = ∑ A t k=0 " ∑∞ tk 0 # = k=0 k! 0 ∑ ∞ = . k=0 (2t)k k! et 0 0 e2t The matrix exponential shares many properties with the ordinary expo- nential function, but there are limitations. The proof that er+s = eres does not emphasize the commutative law, rs = sr, but it uses that fact. Multipli- cation of square matrices is not always commutative, so the matrix version of that identity is as follows. Download 393.36 Kb. Do'stlaringiz bilan baham: 
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