If α is the root of the equation x2-x+2=0 then the value of (6(-α3+2 α2-α)/α5-3 α4+3 α3-α2) is equal to

Question

If α is the root of the equation x2-x+2=0 then the value of (6(-α3+2 α2-α)/α5-3 α4+3 α3-α2) is equal to (A) 3 (B) 6 (C) 9 (D) 12

Tardigrade Admin · Accepted Answer

α2-α+2=0 text So, (6(-α3+2 α2-α)/α5-3 α4+3 α3-α2)=(-6 α(α2-2 α+1)/α2(α3-3 α2+3 α-1)) =(-6 α(α-1)2/α2(α-1)3)=(-6/α(α-1))=(-6/α2-α)=(-6/-2)=3 From equation (1)

Q. If α is the root of the equation x2−x+2=0 then the value of α5−3α4+3α3−α26(−α3+2α2−α)​ is equal to

3

6

9

12

α2−α+2=0 So, α5−3α4+3α3−α26(−α3+2α2−α)​=α2(α3−3α2+3α−1)−6α(α2−2α+1)​ =α2(α−1)3−6α(α−1)2​=α(α−1)−6​=α2−α−6​=−2−6​=3 From equation (1)

Q. If $α$ is the root of the equation $x^{2} - x + 2 = 0$ then the value of $\frac{6 ( - α ^{3} + 2 α ^{2} - α )}{α ^{5} - 3 α ^{4} + 3 α ^{3} - α ^{2}}$ is equal to