Question 3
Let m and n be positive integers, If $$x^{2}+mx+2n=0$$ and $$x^{2}+2nx+m=0$$ have real roots, then the smallest possible value of $$m+n$$ is
Solution
To have real roots the discriminant should be greater than or equal to 0.
So, $$m^2-8n\ge0\ \&\ 4n^2-4m\ge0$$
=> $$m^2\ge8n\ \&\ n^2\ge m$$
Since m,n are positive integers the value of m+n will be minimum when m=4 and n=2.
.'. m+n=6.
Video Solution
CAT Quant Questions | CAT Quantitative Ability
CAT Remainders QuestionsCAT Mensuration QuestionsCAT Time And Work QuestionsCAT Probability, Combinatorics QuestionsCAT Percentages Questions
CAT DILR Questions | LRDI Questions For CAT
CAT Quant Based LR QuestionsCAT Table with Missing values QuestionsCAT Scheduling QuestionsCAT Data Interpretation Basics QuestionsCAT DI Miscellaneous Questions
