Write the solution set of the inequation `|x-1|geq|x-3|dot`A. `(-oo, 2]`B. `[2, oo)`C. `[1, 3)`D. none of these

Write the solution set of the inequation `|x-1|geq|x-3|dot`A. `(-oo, 2

1.	Write the solution set of the inequation `\|x-1\|geq\|x-3\|dot`A. `(-oo, 2]`B. `[2, oo)`C. `[1, 3)`D. none of these
Answer» Correct Answer - B Here, x = 1 and x=3 are two critical points which divide the real line into these three parts, namely, `x lt 1, 1 le x lt 3 " and " x ge 3`. So, we discuss the following cases: CASE I When `x lt 1:` In this case, we have `\|x-1\| = -(x-1) " and " \|x-3\| = -(x-3)` `therefore \|x-1\| ge \|x-3\|` `rArr -(x-1) ge -(x-3) rArr 1 ge 3`, which is absurd. So, the inequation has no solution for `x lt 1` CASE II When `1 le x lt 3` In this case, we have `\|x-1\| = x-1 " and " \|x-3\| = -(x-3)` `therefore \|x-1\| ge \|x-3\|` `x-1 ge - (x-3) rArr 2x-4 ge 0 rArr x ge 2` But, ` 1 le x lt 3`. Therefore, `1 le x lt 3 " and " x ge 2 rArr x in [2, 3)` CASE III When ` x ge 3` In this case, we have `\|x-1\| = x-1 " and " \|x-3\|= x-3` `therefore \|x-1\| ge \|x-3\|` `rArr x-1 ge x-3 rArr -1 ge -3,` which is correct. So, the given inequation has all solutions satisfying `x ge3`. Hence, the solution set of the given inequation is `[2, oo)`.