CAT 1991 QA Question

Question 30

Let Y = minimum of {(x+2), (3-x)}. What is the maximum value of Y for 0 <= x <=1?

Solution

For x<0 ; y=x+2

for 0<x<$$\frac{1}{2}$$ ; $$y=x+2$$

for $$x>\frac{1}{2}$$ ; $$y=3-x$$

Hence, $$y$$ attains its maxima at $$x=\frac{1}{2}$$  i.e. $$y$$ = 2.5

Share on Whatsapp Share on Whatsapp

Create a FREE account and get:

  • All Quant CAT complete Formulas and shortcuts PDF
  • 38+ CAT previous year papers with video solutions PDF
  • 5000+ Topic-wise Previous year CAT Solved Questions for Free

CAT Quant Questions | CAT Quantitative Ability

CAT DILR Questions | LRDI Questions For CAT

CAT Verbal Ability Questions | VARC Questions For CAT

Also Read

CAT Mock Tests
CAT 2025 Course
Free CAT Preparation
CAT Questions
CAT Formulas PDF
CAT Study Material
CAT Score vs Percentile
CAT Score Calculator
CAT Percentile Predictor
CAT Sectional Tests
CAT Exam
CAT Prep Videos
CAT Registration
CAT Syllabus 2025
CAT Eligibility Criteria
CAT Admit Card
cracku

Boost your Prep!

Download App