Question

If ${\alpha }_1,{\alpha }_2,{\alpha }_3,{\alpha }_4$ are the roots of the equation $x^4+(2-\sqrt{3})x^2+2+\sqrt{3}=0,$ then the value of $(1-{\alpha }_1)(1-{\alpha }_2)(1-{\alpha }_3)(1-{\alpha }_4)$ is:

• A. 1
• B. 4
• C. $2+\sqrt{3}$
• D. 5
• E. 0

Answer 1

Answer: (D)

$(1-{\alpha }_1)(1-{\alpha }_2)(1-{\alpha }_3)(1-{\alpha }_4)$ $=(1+{\alpha }_1{\alpha }_2-{\alpha }_1-{\alpha }_2)(1-{\alpha }_3)(1-{\alpha }_4)$ $=(1+{\alpha }_1{\alpha }_2-{\alpha }_1-{\alpha }_2-{\alpha }_3-{\alpha }_1{\alpha }_2{\alpha }_3$ $+{\alpha }_1{\alpha }_3+{\alpha }_2{\alpha }_3)(1-{\alpha }_4)$ $=1+\Sigma {\alpha }_1{\alpha }_2-\Sigma {\alpha }_1{\alpha }_2{\alpha }_3-\Sigma {\alpha }_1+{\alpha }_1{\alpha }_2{\alpha }_3{\alpha }_4$ $=1+(2-\sqrt{3})-0-0+2+\sqrt{3}$ $=-2\sqrt{3}+1+2+\sqrt{3}=5$