Sample examinations Linear Algebra (201-NYC-05) Autumn 2010 1. Given
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Sample examinations Linear Algebra (201-NYC-05) Autumn 2010 1. Given
Sample examinations Linear Algebra (201-NYC-05) Autumn 2010 12. Let 1. Given 1 A = −4 −5 8 −26 −30 −1 1 1 1 −3 −3 −4 b = 0 . 2 and a. Solve the equation Ax = b. Express your answer in parametric vector form. b. Find a particular solution of Ax = b whose first entry is 6. c. Give a basis of Nul A. 2. Given the matrix 1 0 2 1 1 1 1 2 A= 1 2 0 b . 0 3 a b Under what conditions on a and b is rank A equal to a. 4? 3. Let 3 A = 1 0 −2 −1 4 −4 −3 21 b. 3? c. 2? 3 b = 1 . 8 and 0 M = A 0 B C 0 a. b. c. d. Does H contain the zero vector of R4 ? Is H closed under addition? Justify your answer. Is H closed under scalar multiplication? Justify your answer. Is H a subspace of R4 ? Justify your answer. 13. Find a specific example of each of the following, if possible. If there is no such example, explain why not. a. Find A−1 . b. Solve Ax = b using your answer to Part a. 4. Assume that the partitioned matrix a b H = : ad = bc ⊂ R4 . c d a. b. c. d. e. A non-zero 2 × 2 matrix A such that Col A = Row A. A 2 × 2 matrix A such that Nul A = Row A. A lower triangular 3 × 3 matrix A such that A and A + I are both singular. A square matrix A such that x Ax is surjective but not injective. A unit vector that is orthogonal to both 1 2 −1 1 . and −4 −2 14. You are given points A(2, 7, −1), B(3, 3, −1), C(3, 7, −4) and D(5, 5, 5). −−→ −−→ a. Find the cosine of the angle between AB and AC . −−→ −−→ b. Find proj−−→ AB and perp−−→ AB . 0 0 D AC is invertible, and that A, B, C and D are square. a. Express M −1 as a partitioned matrix. b. Which of the matrices A, B, C, D must be invertible for M −1 to exist? 5. Set up an augmented matrix for balancing the chemical equation Ca(OH)2 + H3 PO4 → Ca3 (PO4 )2 + H2 O 6. Let A be a 4 × 4 symmetric matrix with det A = −5. For each part, either provide an answer or write “not enough information”. a. What is the value of det(−4A−1 )? b. What is the value of det(2AT − A)? c. What is the value of det(A − I)? AC c. Find the distance from the point B to the line AC. d. Find a normal equation of the plane containing the points A, B and C. −−→ −−→ −−→ e. Find the volume of the parallelepiped with edges AB , AC and AD . 15. Let $1 and $2 be, respectively the planes with standard equations 4x − 2y + 5z = 3 − 2x + y + kz = 0. and a. For which values of k, if any, are $1 and $2 parallel? b. For which values of k, if any, are $1 and $2 orthogonal? c. For which values of k, if any, does the point (−1, −1, 1) lie on $1 and $2 ? 16. Let A and B be matrices of the same size. Suppose that x is in both Nul A and Nul B. Show that x must be in Nul(A + B). 17. Find a basis of the subspace 7. Let A, B and C be n × n matrices and suppose that AB T C −1 = In . H = { X ∈ M2×2 : AX = XA } a. Use determinants to explain why A and B must be invertible. b. Does A commute with B T C −1 ? Explain your answer. c. Find B −1 . of M2×2 , where 8. Express 18. Let U = Span{p, q} and V = Span{u, v}, where 0 1 1 1 0 1 and p = , q = , u= 1 1 0 1 2 1 2 5 A = −2 −8 8 2 as a product LU , where L is lower triangular and U is upper triangular. 9. Find elementary matrices E1 and E2 such that −5 6 E2 E1 = I2 . 0 1 10. Let P1 be the parallelogram with vertices (0, 0), (1, −2), (4, −1) and (3, 1), let P2 be the parallelogram with vertices (0, 0), (−1, −1), (1, −4) and (2, −3), and let A be a 2 × 2 matrix, such that the linear transformation x Ax maps P1 onto P2 . a. What are the possible values of det A? b. Give a specific matrix B such that the linear transformation x Bx maps P2 onto P1 . 11. Simplify the expression u · (v − u) × (w − u) as much as possible, where u, v and w are vectors in R3 . A= 1 . −1 1 0 2 −1 v= 3 . 1 a. Find a basis of U + V . b. Find a basis of U ∩ V . c. What is the distance between the line p + tq and V ? d. Find the point(s) on U which minimize the distance to the line u + tv, and find the distance between U and this line. 19. a. Give the (precise) definition of a basis of a vector space. b. Suppose that V and W are vector spaces, that B = {b1 , . . . , bn } is a basis of V , and that T : V → W is a linear transformation such that T (bi ) = 0W for i = 1, . . . , n. Prove that T is the zero transformation. c. Suppose that V is a vector space, and that A = {a1 , . . . am } are bases of V . Prove that m = n. and B = {b1 , . . . bn } Sample examinations (solutions) Linear Algebra (201-NYC-05) 1. a. Reducing the augmented matrix of the given equation yields 1 1 −1 8 −4 1 1 −1 8 −4 −3 1 −26 0 ∼ 0 1 −3 6 −5 −3 1 −30 2 0 2 −4 10 1 1 −1 8 ∼ 0 1 −3 6 0 0 2 −2 1 1 0 7 ∼ 0 1 0 3 0 0 1 −1 1 0 0 4 ∼ 0 1 0 3 0 0 1 −1 −4 −16 −18 −4 −16 14 3. a. Reducing 3 −2 1 −1 0 4 Autumn 2010 A I3 gives −4 1 0 −3 0 1 21 0 0 3 5 7 −2 5 . 7 Therefore, the general solution of Ax = b consists of all vectors of the form p + tu, where t is a real number, −4 −2 −3 5 . and u= p= 1 7 1 0 b. p − 2u, i.e., −2 −4 6 5 − 2 −3 = 11 7 1 5 0 1 −2 is a solution of Ax = b whose first entry is 6. c. The null space of A, i.e., the solution set of Ax = 0, consists of all vectors of the form tu, where t is a real number. So {u} is a basis of Nul A 2. Reducing the matrix A gives 1 0 2 1 1 1 1 1 2 0 1 2 0 b ∼ 0 0 3 a b 0 1 0 ∼ 0 0 1 0 ∼ 0 0 0 1 2 3 2 −1 −2 a 0 1 0 0 2 −1 0 a+3 0 1 0 0 2 −1 a+3 0 1 1 b − 1 b 1 1 b − 3 b−3 1 1 . b − 3 b−3 a. The rank of A is equal to 4 if a 6= −3 and b 6= 3. b. The rank of A is equal to 3 if a = −3 and b 6= 3, or a 6= −3 and b = 3. c. The rank of A is equal to 2 if a = −3 and b = 3. and therefore 0 3 0 ∼ 0 0 1 3 ∼ 0 0 3 ∼ 0 0 3 ∼ 0 0 1 ∼ 0 0 −2 0 − 53 − 31 1 0 21 0 0 1 −4 1 0 0 − 53 − 31 1 0 1 −4 12 1 0 −15 48 4 0 −7 21 53 1 −4 12 1 27 −78 −6 21 −63 −5 −4 12 1 9 −26 −2 21 −63 −5 , −4 12 1 −4 − 13 4 −2 − 31 0 −2 − 13 0 0 0 1 0 0 1 0 0 1 0 0 1 1 0 9 −26 −2 A = 21 −63 −5 . −4 12 1 b. Since A is invertible, the unique solution to Ax = b is 9 −26 −2 3 −15 −1 x = A b = 21 −63 −5 1 = −40 . −4 12 1 8 8 −1 4. a. Since the inverse of a nonsingular block the inverse of M , if it exists, has the form P Q N = R S 0 0 diagonal matrix is block diagonal, 0 0 , T with square blocks. Comparing the blocks of N M , P Q 0 0 B 0 QA R S 0 A C 0 = SA 0 0 T 0 0 D 0 P B + QC RB + SC 0 0 0 , TD to those of the block diagonal identity matrix, gives QA = I, P B + QC = 0, SA = 0, RB + SC = I and T D = I. The equations QA = I and T D = I, since the factors on the left sides are square, give Q = A−1 and T = D−1 . Then SA = 0 implies that S = 0. Since S = 0, the equation RB + SC = I becomes RB = I and, again since the factors on the left side are square, it follows that R = B −1 . Finally, the equation P B + QC = 0 becomes P B + A−1 C = 0, or P B = −A−1 C, i.e., P = −A−1 CB −1 . Therefore, the inverse of M , if it exists, is −A−1 CB −1 A−1 0 −1 B 0 0 . 0 0 D−1 b. If M is invertible then A, B and D are invertible. 5. If (taking Calcium, Oxygen, Hydrogen and Phosphorus, in order) 1 0 3 0 2 4 8 1 s1 = , s2 = , s3 = and s4 = 2 3 0 2 0 1 2 0 then positive integer solutions of the vector equation x1 s1 + x2 s2 = x3 s3 + x4 s4 balance the chemical equation in question. The corresponding augmented matrix is s1 s2 −s3 −s4 0 . Sample examinations (solutions) Linear Algebra (201-NYC-05) c. If x belongs to H and α is a scalar, then x1 x4 = x2 x3 , and therefore (αx1 )(αx4 ) = α2 x1 x4 = α2 x2 x3 = (αx2 )(αx3 ), so αx belongs to H . This shows that H is closed under scalar multiplication. d. Since H is not closed under addition, it is not a subspace of R4 . 6. Using that det A = −5 and AT = A, one finds that a. det(−4A−1 ) = (−4)4 (det A)−1 = − 256 and 5 b. det(2AT − A) = det A = −5, but that c. det(A − I) is not determined, for example if A = e1 e2 e3 −5e4 then 5 . det(A − I) = 0, and if A = 2e1 2e2 2e3 − 8 e4 then det(A − I) = − 13 8 13. a. If A is any symmetric matrix then Col A such = Row A. Simple examples matrices are I2 , e1 0 , 0 e2 , e2 e1 , e1 + e2 e1 + e2 , & c. AB T C −1 7. a. If In = then, since the determinant preserves products and is invariant under transposition, (det A)(det B)(det C)−1 = 1, which implies that det A 6= 0 and det B 6= 0, so A and B are nonsingular. b. Since A and B T C −1 are n × n matrices and AB T C −1 = In , it follows that A−1 = B T C −1 , which implies that A commutes with B T C −1 . c. By Part b, B T C −1 A = In , which implies (since B T and C −1 A are n × n matrices) that (B T )−1 = C −1 A, and therefore B −1 = (C −1 A)T . 8. Here is an LU factorization of A 2 5 1 −2 −8 = −1 8 2 4 0 2 0 0 1 0 0 1 6 b. If y ∈ Nul A and y ∈ Row A = Col AT then y = AT x for some x and so yT y = yT AT x = (Ay)T x = 0T x = 0, which implies that y = 0. Hence, if Nul A ⊂ Row A then Nul A = {0}, which implies that A is invertible and therefore Row A = R2 . This shows that there is no 2 × 2 matrix A such that Nul A = Row A. c. If A = 0 0 −e3 then det A = 0, and A + I3 = e1 e2 0 , so det(A + I3 ) = 0, as required. d. If x Ax is surjective then A is invertible (by the Invertible Matrix Theorem), which implies that x Ax is injective. So there is no matrix as requested. e. The cross product 1 2 6 −1 × 1 = −6 , −4 −2 3 5 −3 , 0 via the rough work −3 −18 0 is orthogonal to each of the given vectors, so its normalization, 2 1 −2 , 3 1 9. By inspection, one has − 15 0 ! 0 1 1 0 ! −6 1 ! 6 −5 0 . is a vector as required 1 10. The parallelogram P1 is formed by u1 and u2 , and P2 is the parallelogram formed by the vectors v1 and v2 , where 3 −1 2 1 , u2 = , v1 = and v2 = . u1 = 1 −1 −3 −2 14. In this problem one has 1 1 3 −−→ −−→ −−→ u = AB = −4 , v = AC = 0 and w = AD = −2 . 0 −3 6 −−→ −−→ a. The cosine of the angle between u = AB and v = AC is equal to a. The area of the parallelograms P1 and P2 are, respectively, −1 1 2 3 and −1 −3 = 5, −2 1 = 7 1 uT v 1 √ = 170 = √ √ 170. 10 17 kukkvk −−→ −−→ b. The orthogonal projection of u = AB onto v = AC is equal to 1 vT u 1 projv u = uv = T v = 10 0 , v v −3 so the determinant of a linear transformation which maps P1 onto P2 is equal to ± 75 (depending on whether or not the transformation preserves or reverses orientation). b. One such matrix B will satisfy B v1 v2 = u1 u2 , i.e., −1 B = u1 u2 v1 v2 −1 1 3 −1 2 = −2 1 −1 −3 1 3 −3 −2 = 51 −2 1 1 −1 0 −5 = 15 . 7 3 and the orthogonal component of the projection is 1 1 1 perpv u = u − uv = −4 − 10 0 = 0 −3 v2 v1 −1 = − 51 8 5 1 10 9 −40 . 3 c. The distance from the point B to the line AC is equal to the length of the or−−→ −−→ thogonal component of the projection of u = AB onto v = AC , i.e., √ √ 13 1 1690 = 10 10. kperpv uk = 10 The other such matrix is u1 u2 Autumn 2010 Alternatively, the distance between the point B and the line AC is equal to the area −−→ −−→ of the parallelogram formed by u = AB and v = AC , divided by the length of −−→ (the base) v = AC . The area of the parallelogram formed by u and v is the is the length of the cross product 1 1 12 n = u × v = −4 × 0 = 3 , 0 −3 4 √ √ i.e., 13, and the length of v is 10 which, as expected, gives a distance of 13 10. 10 d. The vector n (from Part c) is a normal to the plane containing the points A, B and C, so a normal equation of this plane is nT =nT p, i.e., 7 . 0 11. The bilinearity of the dot and cross product, the algebraic characterization of the cross product and the alternating property of the determinant, gives u · (v − u) × (w − u) =u· v×w−v×u−u×w+u×u = det u v w − det u v u − det u u w = det u v w . 12x1 + 3x2 + 4x3 = 41 −−→ −−→ −−→ where for example p is OA , OB or OC . −−→ −−→ −−→ e. The volume of the parallelepiped with edges u = AB , v = AC , w = AD T is equal to, 54, i.e., (the absolute value of) det u v w = (u × v) w. 12. a. Since 0 · 0 = 0 · 0, the zero vector of R4 belongs to H . b. e2 and e3 belong to H , since each side of the equation defining H is zero, but e2 + e3 does not belong to H , because the left side of the equation defining H is zero and the right side is 1. Therefore, H is not closed under addition. 2 Sample examinations (solutions) Linear Algebra (201-NYC-05) d. Let A = p q ; then, since v is parallel to U , the points on U which minimize the distance to the line u + tv are of the form x + tv, where 15. Let n1 be the given normal to the plane $1 , and let n2 be the given normal to the plane $2 . a. The planes $1 and $2 are parallel if their normal vectors are so; i.e., if n2 = − 12 n1 , or k = − 52 . b. The planes $1 and $2 are orthogonal if their normal vectors are so; i.e., if 0 = nT 1 n2 = −10 + 5k, or k = 2. c. The point P (−1, −1, 1) lies on the planes $1 and $2 if its coordinates satisfy the equations of both planes. The point P is on the plane $1 since 4(−1) − 2(−1) + 5(1) = 3, and it is also on $2 if −2(−1) + (−1) + k(1) = 0, i.e., k = −1. x = A(AT A)−1 AT u 1 1 0 1 3 3 −1 1 0 1 = 1 0 3 6 1 1 0 1 2 1 1 0 1 −1 2 2 = 31 = 31 1 0 −1 1 3 1 2 2 1 1 = 3 1 3 16. If x is in both Nul A and Nul B, then (A + B)x = Ax + Bx = 0 + 0 = 0, which shows that x belongs to Nul(A + B). 17. If X= x11 x21 x12 x22 , then AX = 1 0 1 x11 −1 x21 x12 x22 = x11 + x21 −x21 x12 + x22 −x22 x11 x21 x12 x22 1 0 1 x11 = −1 x21 x11 − x12 x21 − x22 , and so by comparing entries one finds that AX = XA if, and only if, x21 = 0 and x11 = 2x12 + x22 . Therefore, X ∈ H if, and only if, x22 + 2x12 x12 X= = x22 M1 + x12 M2 , 0 x22 where 0 1 1 2 1 1 1 1 0 1 1 1 0 1 1 2 is the orthogonal projection of u onto U . The distance between U and the line u + tv is equal to the length of −2 1 2 u − x = 3 , 2 0 √ which is 32 3. and XA = Autumn 2010 19. a. An indexed set B of vectors in a linear space V is a basis of V if B is linearly independent and Span B = V . b. If x ∈ V then there are scalars β1 , . . . , βn such that x = β1 b1 + · · · + βn bn , and so 1 0 2 1 . and M2 = 0 1 0 0 Since {M1 , M2 } spans H , and is clearly linearly independent, it is a basis of H . T (x) = T (β1 b1 + · · · + βn bn ) M1 = = β1 T (b1 ) + · · · + βn T (bn ) = 0W , 18. a. Since U + V = Span{p, q, u, v}, and since 1 1 0 2 0 1 1 −1 p q u v = 1 0 1 3 1 2 1 1 1 1 0 2 0 1 1 −1 ∼ 0 −1 1 1 0 1 1 −1 1 1 0 2 0 1 1 −1 ∼ 0 0 2 0 0 0 0 0 1 1 0 2 0 1 0 −1 ∼ 0 0 1 0 0 0 0 0 1 0 0 3 0 1 0 −1 , ∼ 0 0 1 0 0 0 0 0 since T (bj ) = 0W for j = 1, . . . , n., and so T is the zero transformation. c. Since Span A = V (because A is a basis of V ), there is an n × m matrix A = αji such that bj = αj1 a1 + · · · + αjm am = m X αji ai i=1 for j = 1, . . . , n. Likewise, there is an m × n matrix B = βij such that ai = βi1 b1 + · · · + βin bn = n X βij bj j=1 for i = 1, . . . , n (since B is a basis of V and hence Span B = V ). So for k = 1, . . . , n, X m m n X X bk = αki ai = αki βij bj i=1 = i=1 n X m X j=1 j=1 αki βij bj , i=1 which implies that m X i=1 ( αki βij = 1 if k = j, and 0 if k 6= j, i.e., AB = In , since B is linearly independent. By a similar computation, the fact that A is linearly independent implies that BA = Im . It follows that m = n and that A and B are inverses (e.g., because AB = In implies that B has linearly independent columns, so n 6 m, and likewise BA = Im implies that A has linearly independent columns, so m 6 n). from which it follows that p, q, u are linearly independent and v = 3p − q, the list {p, q, u} is a basis of U + V . b. From the solution to Part a it follows that every vector in U ∩ V is a multiple of v = 3p − q. Therefore, {v} is a basis of U ∩ V . c. By the solution to Part a, 31 v = p − 31 q belongs to V and to the line p + tq, from which it follows that the distance between V and this line is zero. Note: A more compact solution is available if you know about coordinate vectors and the list-vector product (the product of a list of abstract vectors and a column vector): Since Span A = V there is a m × n matrix P such that A P = B. If P x = 0 then Bx = A P x = 0, and so, since B is linearly independent, x = 0. Hence, P has linearly independent columns, which implies that n 6 m. Likewise, since Span B = V and A is linearly independent, it follows that m 6 n. 3