ProbabilityMCQMTP Mar 22Question 3407 of 187
All Questions

If 2x+3y4=0\displaystyle 2x + 3y - 4 = 0 and V(x)=6\displaystyle V(x) = 6 then V(y)\displaystyle V(y) is

Options

A83\displaystyle \frac{8}{3}
B93\displaystyle \frac{9}{3}
C6\displaystyle 6
D9\displaystyle 9
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Correct Answer

Option b93\displaystyle \frac{9}{3}

All Options:

  • A83\displaystyle \frac{8}{3}
  • B93\displaystyle \frac{9}{3}
  • C6\displaystyle 6
  • D9\displaystyle 9

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Detailed Solution & Explanation

**Probability of Drawing Three Balls of Different Colors** Total balls in the bag = 4+5+6=15\displaystyle 4 + 5 + 6 = 15 - Red balls = 4 - White balls = 5 - Black balls = 6 Three balls are drawn at random. We want the probability that they are of different colors (i.e., 1 red, 1 white, and 1 black). **Step 1: Calculate total ways to choose 3 balls** Total ways=(153)=15×14×133×2×1=455\text{Total ways} = \binom{15}{3} = \frac{15 \times 14 \times 13}{3 \times 2 \times 1} = 455 **Step 2: Calculate favorable ways** To get 1 ball of each color: Favorable ways=(41)×(51)×(61)=4×5×6=120\text{Favorable ways} = \binom{4}{1} \times \binom{5}{1} \times \binom{6}{1} = 4 \times 5 \times 6 = 120 **Step 3: Probability calculation** P=120455P = \frac{120}{455} Dividing the numerator and the denominator by 5: P=2491P = \frac{24}{91} Hence, **Option B** is the correct answer.

About This Chapter: Probability

Paper

Paper 3: Quantitative Aptitude

Weightage

5-7 Marks

Key Topics

Probability Operations, Expected Value

A logic-heavy chapter dealing with random experiments, events (mutually exclusive, exhaustive), set theory probability, conditional probability, and Bayes' Theorem. It forms the basis for Theoretical Distributions.

View Official ICAI Syllabus

Exam Strategy Tip

Always draw a quick Venn Diagram or tree when faced with 'At least one' or 'Only A but not B' wording. It saves you from double-counting.

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