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Matrices Practice Questions - DPP for JEE
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Page 2 3. (b) (aI + bA) 2 = a 2 I 2 + b 2 A 2 + 2ab AI = a 2 I 2 + b 2 A 2 + 2abA But ? (aI + bA) 2 = a 2 I + 2abA. 4. (b) Hence f(a) f(ß) = = = similarly f(a) f(ß) f(?) = = as a + ß + ? = p = = – I 2 5. (a) 6. (a) (A – 2I) (A + I) = 0 ? AA – A – 2I = 0 ( AI = A) ? 7. (a) Given Q = PAP T ? P T Q = AP T , ( Q PP T = I) ? P T Q 2005 P = AP T Q 2004 P = AP T Q 2003 PA ( Q Q = PAP T ? QP = PA) Page 3 3. (b) (aI + bA) 2 = a 2 I 2 + b 2 A 2 + 2ab AI = a 2 I 2 + b 2 A 2 + 2abA But ? (aI + bA) 2 = a 2 I + 2abA. 4. (b) Hence f(a) f(ß) = = = similarly f(a) f(ß) f(?) = = as a + ß + ? = p = = – I 2 5. (a) 6. (a) (A – 2I) (A + I) = 0 ? AA – A – 2I = 0 ( AI = A) ? 7. (a) Given Q = PAP T ? P T Q = AP T , ( Q PP T = I) ? P T Q 2005 P = AP T Q 2004 P = AP T Q 2003 PA ( Q Q = PAP T ? QP = PA) = AP T Q 2002 PA 2 = AP T PA 2004 = AIA 2004 =A 2005 8. (d) Hence, AB = BA only when a = b ? There can be infinitely many B's for which AB = BA 9. (a) Here, A = where t = tan Now, and = = Page 4 3. (b) (aI + bA) 2 = a 2 I 2 + b 2 A 2 + 2ab AI = a 2 I 2 + b 2 A 2 + 2abA But ? (aI + bA) 2 = a 2 I + 2abA. 4. (b) Hence f(a) f(ß) = = = similarly f(a) f(ß) f(?) = = as a + ß + ? = p = = – I 2 5. (a) 6. (a) (A – 2I) (A + I) = 0 ? AA – A – 2I = 0 ( AI = A) ? 7. (a) Given Q = PAP T ? P T Q = AP T , ( Q PP T = I) ? P T Q 2005 P = AP T Q 2004 P = AP T Q 2003 PA ( Q Q = PAP T ? QP = PA) = AP T Q 2002 PA 2 = AP T PA 2004 = AIA 2004 =A 2005 8. (d) Hence, AB = BA only when a = b ? There can be infinitely many B's for which AB = BA 9. (a) Here, A = where t = tan Now, and = = = = = = = Also, = = = (I – A) 10. (a) A 2 = I Now, (A – I) 3 + (A + I) 3 – 7A = A 3 – I 3 – 3A 2 I + 3AI 2 + A 3 + I 3 + 3A 2 I + 3AI 2 – 7A = 2A 3 + 6AI 2 – 7A = 2A 2 A + 6AI – 7A = 2IA +6A – 7A = 2A + 6A – 7A = A 11. (a) Since B is an idempotent matrix, ? B 2 = B. Page 5 3. (b) (aI + bA) 2 = a 2 I 2 + b 2 A 2 + 2ab AI = a 2 I 2 + b 2 A 2 + 2abA But ? (aI + bA) 2 = a 2 I + 2abA. 4. (b) Hence f(a) f(ß) = = = similarly f(a) f(ß) f(?) = = as a + ß + ? = p = = – I 2 5. (a) 6. (a) (A – 2I) (A + I) = 0 ? AA – A – 2I = 0 ( AI = A) ? 7. (a) Given Q = PAP T ? P T Q = AP T , ( Q PP T = I) ? P T Q 2005 P = AP T Q 2004 P = AP T Q 2003 PA ( Q Q = PAP T ? QP = PA) = AP T Q 2002 PA 2 = AP T PA 2004 = AIA 2004 =A 2005 8. (d) Hence, AB = BA only when a = b ? There can be infinitely many B's for which AB = BA 9. (a) Here, A = where t = tan Now, and = = = = = = = Also, = = = (I – A) 10. (a) A 2 = I Now, (A – I) 3 + (A + I) 3 – 7A = A 3 – I 3 – 3A 2 I + 3AI 2 + A 3 + I 3 + 3A 2 I + 3AI 2 – 7A = 2A 3 + 6AI 2 – 7A = 2A 2 A + 6AI – 7A = 2IA +6A – 7A = 2A + 6A – 7A = A 11. (a) Since B is an idempotent matrix, ? B 2 = B. Now, A 2 = (I – B) 2 = (I – B)(I – B) ? A is idempotent. 12. (c) 13. (c) ? A(x). A(y) = A(z). 14. (d) We have A = Now, A 2 = A . A = = = – I where I = is identity matrix (A 2 ) 8 = (– I) 8 = I Hence, A 16 = I 15. (d) = ; ? a 2 + ß? = 1 16. (a)Read More
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