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Let `f(x)=(1+m)x^2-2(1+3m)x+4(1+2m).` Numbe of interval values of `m` for which given qudratic expression is always positive is (A) `8` (B) `7` (C) `8` (D) `9`A. 6B. 8C. 7D. 3 |
Answer» Correct Answer - C The quadratic expression `ax^(2)+bx+c,x in R` is always positive, if `a gt 0 and Dlt0.` So, the quadratic expression `(1+2m)x^(2)-2(1+3m)^(2)-4(2m+1)(1+m),x inR` will be always positive, if `1+2n gt 0 " "…(i)` and `D=4(1+3m)^(2)-4(2m+m)lt0" "(ii)` Form inequality Eq. (1), we get `m gt-1/2" "...(iii)` From inequatity Eq. (ii), we get `1+9m^(2)+6m-(2m^(2)+3m+1)lt0` `impliesm^(2)-6m-3lt0` `implies[m-(3+sqrt12)][m-(3sqrt12)]lt0` `"["becausem^(2)-6m-3=0impliesm=(6+-sqrt(36+12))/(2)=3+-sqrt12"]"` `implies3-sqrt12klt3+sqrt12" "...(iv)` From inequalities Eqs. (iii) and (iv), the integral values of m are `0,1,2,3,4,5,6` Hence, the number of integral values of m is 7. |
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