BANK & INSURANCE (PROBABILITY) PART 3

Let number of red balls in bag ‘A’ be ‘x’
So, number of green balls in bag ‘A’ = x + 4
Number of blue balls in bag ‘A’ = x + 4 − 1 = x + 3
Number of red balls in bag ‘B’ = x − 3
Number of blue balls in bag ‘B’ = x + 3 − 2 = x + 1
Let number of green balls in bag ‘B’ be ‘y’

Total number of balls in bag ‘A’ = x + x + 3 + x + 4
= 3x + 7

Total number of balls in bag ‘B’ = x − 3 + y + x + 1
= 2x + y − 2

According to question;
(x + 4 + y)/(5x + y + 5) = 3/8
8x + 8y + 32 = 15x + 3y + 15
7x − 5y = 17 ...(1)

And, {2y(x + 1)}/[(2x + y − 2)(2x + y − 3)] = 1/3

Putting y = (7x − 17)/5, we get
79x² − 703x + 1374 = 0
79x² − 474x − 229x + 1374 = 0
79x(x − 6) − 229(x − 6) = 0
(x − 6)(79x − 229) = 0
x = 6 or x = 229/79 (not possible)

So, x = 6
And, y = (7×6 − 17)/5 = 5

Number of red balls in bag ‘A’ = x = 6
Number of green balls in bag ‘A’ = x + 4 = 6 + 4 = 10
Number of blue balls in bag ‘A’ = x + 3 = 6 + 3 = 9

Number of red balls in bag ‘B’ = x − 3 = 6 − 3 = 3
Number of blue balls in bag ‘B’ = x + 1 = 6 + 1 = 7
Number of green balls in bag ‘B’ = y = 5

Total number of balls in bag ‘A’ = 3x + 7 = 3×6 + 7 = 25
Total number of balls in bag ‘B’ = 2x + y − 2 = 2×6 + 5 − 2 = 15

Total number of red balls = 6 + 3 = 9
Total number of green balls = 10 + 5 = 15
Total number of blue balls = 9 + 7 = 16

Total number of balls = 9 + 15 + 16 = 40

Desired probability = (¹⁵C₁ × ¹⁶C₁) / ⁴⁰C₂ = 4/13
Hence, option a.

Let number of red balls in bag ‘A’ be ‘x’
So, number of green balls in bag ‘A’ = x + 4
Number of blue balls in bag ‘A’ = x + 4 − 1 = x + 3
Number of red balls in bag ‘B’ = x − 3
Number of blue balls in bag ‘B’ = x + 3 − 2 = x + 1
Let number of green balls in bag ‘B’ be ‘y’

Total number of balls in bag ‘A’ = x + x + 3 + x + 4
= 3x + 7

Total number of balls in bag ‘B’ = x − 3 + y + x + 1
= 2x + y − 2

According to question;
(x + 4 + y)/(5x + y + 5) = 3/8
8x + 8y + 32 = 15x + 3y + 15
7x − 5y = 17 ...(1)

And, {2y(x + 1)}/[(2x + y − 2)(2x + y − 3)] = 1/3

Putting y = (7x − 17)/5, we get
79x² − 703x + 1374 = 0
79x² − 474x − 229x + 1374 = 0
79x(x − 6) − 229(x − 6) = 0
(x − 6)(79x − 229) = 0
x = 6 or x = 229/79 (not possible)

So, x = 6
And, y = (7×6 − 17)/5 = 5

Number of red balls in bag ‘A’ = x = 6
Number of green balls in bag ‘A’ = x + 4 = 6 + 4 = 10
Number of blue balls in bag ‘A’ = x + 3 = 6 + 3 = 9

Number of red balls in bag ‘B’ = x − 3 = 6 − 3 = 3
Number of blue balls in bag ‘B’ = x + 1 = 6 + 1 = 7
Number of green balls in bag ‘B’ = y = 5

Total number of balls in bag ‘B’ = 2x + y − 2 = 2×6 + 5 − 2 = 15

Total number of balls in bag ‘A’ = 3x + 7 = 3×6 + 7 = 25

Hence, option c.

Total number of caps in bag ‘A’
= x − 4 + 9 + x − 1 = 2x + 4

ATQ:
{2(x − 4)(x − 1)}/[(2x + 4)(2x + 3)] = 2/7

7(x − 4)(x − 1) = (2x + 4)(2x + 3)
7(x² − 5x + 4) = (4x² + 14x + 12)
7x² − 35x + 28 = 4x² + 14x + 12
3x² − 49x + 16 = 0
3x² − 48x − x + 16 = 0
3x(x − 16) − 1(x − 16) = 0
(3x − 1)(x − 16) = 0
x = 16

Number of yellow caps in bag ‘B’ = 20 − (16 − 4) = 8
Number of black caps in bag ‘B’ = 3/5 × (16 − 1) = 9

Let number of white caps in bag ‘B’ be ‘y’
So, 9/(9 + 8 + y) = 3/7
y + 17 = 21
y = 4

Hence, option d.

Probability of getting a six = 1/6
Probability of not getting a six = 1 − 1/6 = 5/6

Since, B starts the game.
So, the probability of B’s winning in his third attempt
= 5/6 × 5/6 × 5/6 × 5/6 × 1/6
= (5/6)⁴ × 1/6
= 625/7776

Hence, option d

A pair of dice is thrown.
Total sample space = 6² = 36

So, 8 can come in the following ways,
(2,6), (6,2), (3,5), (5,3), and (4,4).
So, probability of throwing 8 = 5/36

Probability of not throwing 8 = 1 − (5/36)
= 31/36

And 9 can come in the following ways,
(3,6), (6,3), (4,5) and (5,4).
So, probability of throwing 9 = 4/36 = 1/9

Probability of not throwing 9 = 1 − (1/9) = 8/9

A can win in first, third, fifth, seventh….. throws

So, probability of A’s winning in first throw = 5/36

Probability of A’s winning in third throw = 31/36 × 8/9 × 5/36

Probability of A’s winning in fifth throw
= (31/36)² × (8/9)² × 5/36

Hence, probability of A’s winning
= 5/36 + 31/36 × 8/9 × 5/36 + (31/36)² × (8/9)² × 5/36 + …….

= (5/36) / (1 − (31/36 × 8/9))
= 45/76

Therefore, probability of B’s winning
= 1 − probability of A’s winning
= 1 − 45/76 = 31/76

Hence, option c.

Total number of face cards in a deck of 52 cards = 12
Required probability = 40/52 × 39/51 × 38/50 × 12/49
= 456/4165

Hence, option c.

Let the number of red bottles = x
The number of green bottles = (x + 5) or (x - 5)
Case1:
If the number of red bottles and green bottles be ‘x’
and ‘(x + 5)’, respectively.
According to the question,
Probability of choosing two bottles of different colour
= [(ˣC₁ × ⁽ˣ⁺⁵⁾C₁)/(²ˣ⁺⁵C₂)]
= [2x × (x + 5)]/[(2x + 5)(2x + 5 - 1)]
Probability of choosing two bottles of same colour
= [(ˣC₂/(²ˣ⁺⁵C₂)) + (⁽ˣ⁺⁵⁾C₂/(²ˣ⁺⁵C₂)]
= [x(x - 1)]/[(2x + 5)(2x + 5 - 1)] + [(x + 5)(x + 5-1)]/[(2x + 5)(2x + 5 - 1)]
According to the question,
[2x × (x + 5)]/[(2x + 5)(2x + 5 - 1)] = [x(x - 1)]/[(2x5)(2x + 5 - 1)] + [(x + 5)(x + 5 - 1)]/[(2x + 5)(2x+5 - 1)]
[2x × (x + 5)]/[(2x + 5)(2x + 5 - 1)] = [x(x - 1) + (x+5)(x + 5 - 1)]/[(2x + 5)(2x + 5 - 1)]
2x² + 10x = x² - x + (x + 5)(x + 4)
2x² + 10x = x² - x + x² + 9x + 20
10x = 8x + 20
2x = 20
x = 10
So, the number of red bottles = 10
The number of green bottles = 15
Case 2:
If the number of red bottles and green bottles be ‘x’
and ‘(x - 5)’, respectively
According to the question,
Probability of choosing two bottles of different colour
= [(ˣC₁ × ⁽ˣ⁻⁵⁾C₁)/(²ˣ⁻⁵C₂)]
= [2x × (x - 5)]/[(2x - 5)(2x - 5 - 1)]
Probability of choosing two bottles of same colour
= [(ˣC₂/(²ˣ⁻⁵C₂)) + (⁽ˣ⁻⁵⁾C₂/(²ˣ⁻⁵C₂))]
= [x(x - 1)]/[(2x - 5)(2x - 5 - 1)] + [(x - 5)(x - 5 -1)]/[(2x - 5)(2x - 5 - 1)]
According to the question,
[2x × (x - 5)]/[(2x - 5)(2x - 5 - 1)] = [x(x - 1)]/
[(2x - 5)(2x - 5 - 1)] + [(x - 5)(x - 5 - 1)]/[(2x - 5)(2x-5 - 1)]
[2x × (x - 5)]/[(2x - 5)(2x - 5 - 1)] = [x(x - 1) +
(x - 5)(x - 6)]/[(2x - 5)(2x - 5 - 1)]
2x² - 10x = x² - x + (x - 5)(x - 6)
2x² - 10x = x² - x + x² - 11x + 30-10x = 30 - 12x
2x = 30
x = 15
So, the number of red bottles = 15
The number of green bottles = 10
The total number of bottles in the box = 10 + 15 = 25
Hence, option c.

Case1:
If the number of red bottles and green bottles be ‘x’
and ‘(x + 5)’, respectively.

According to the question,
Probability of choosing two bottles of different colour
= [{xC₁ × (x+5)C₁}/{(2x+5)C₂}]
= [2x × (x + 5)]/[(2x + 5)(2x + 5 − 1)]

Probability of choosing two bottles of same colour
= [(xC₂/(2x+5)C₂) + ((x+5)C₂/(2x+5)C₂)]
= [x(x − 1)]/[(2x + 5)(2x + 5 − 1)] + [(x + 5)(x + 5 − 1)]/[(2x + 5)(2x + 5 − 1)]

According to the question,
[2x × (x + 5)]/[(2x + 5)(2x + 5 − 1)] = [x(x − 1)]/[(2x + 5)(2x + 5 − 1)] + [(x + 5)(x + 5 − 1)]/[(2x + 5)(2x + 5 − 1)]

[2x × (x + 5)]/[(2x + 5)(2x + 5 − 1)] = [x(x − 1) + (x + 5)(x + 5 − 1)]/[(2x + 5)(2x + 5 − 1)]

2x² + 10x = x² − x + (x + 5)(x + 4)
2x² + 10x = x² − x + x² + 9x + 20
10x = 8x + 20
2x = 20
x = 10

So, the number of red bottles = 10
The number of green bottles = 15

Case 2:
If the number of red bottles and green bottles be ‘x’
and ‘(x − 5)’, respectively.

According to the question,
Probability of choosing two bottles of different colour
= [{xC₁ × (x−5)C₁}/{(2x−5)C₂}]
= [2x × (x − 5)]/[(2x − 5)(2x − 5 − 1)]

Probability of choosing two bottles of same colour
= [(xC₂/(2x−5)C₂) + ((x−5)C₂/(2x−5)C₂)]
= [x(x − 1)]/[(2x − 5)(2x − 5 − 1)] + [(x − 5)(x − 5 − 1)]/[(2x − 5)(2x − 5 − 1)]

According to the question,
[2x × (x − 5)]/[(2x − 5)(2x − 5 − 1)] = [x(x − 1)]/[(2x − 5)(2x − 5 − 1)] + [(x − 5)(x − 5 − 1)]/[(2x − 5)(2x − 5 − 1)]

[2x × (x − 5)]/[(2x − 5)(2x − 5 − 1)] = [x(x − 1) + (x − 5)(x − 6)]/[(2x − 5)(2x − 5 − 1)]

2x² − 10x = x² − x + (x − 5)(x − 6)
2x² − 10x = x² − x + x² − 11x + 30
−10x = 30 − 12x
2x = 30
x = 15

So, the number of red bottles = 15
The number of green bottles = 10

Case 1:
If the number of red bottles in the box = 15
Probability of choosing 2 red bottles = (15C₂/25C₂)
= (15 × 14)/(25 × 24) = 7/10
This is not satisfying the condition.

Case 2:
If the number of red bottles in the box = 10
Probability of choosing 2 red bottles = (10C₂/25C₂)
= (10 × 9)/(25 × 24) = 3/20
This is satisfying the condition.

Hence, option b.

Total number of gems in bag ‘A’ = (x + 2 + x − 4 + 7)
= (2x + 5)

According to the question,
{[(x + 2)/(2x + 5)] − [7/(2x + 5)]} = 1/5
5 × (x + 2 − 7) = 2x + 5
5x − 25 = 2x + 5
3x = 30
x = 10

Therefore, in bag ‘A’:
Number of red gems = x + 2 = 12
Number of blue gems = x − 4 = 6
Number of green gems = 7

In Bag ‘B’:
Number of red gems = 1.25 × 12 = 15
Number of blue gems = (x − 8) = 2
Number of green gems = ‘y’

Total number of gems in the bag = (y + 2 + 15)
= (y + 17)

According to the question,
(yC₂/(y + 17)C₂) = 10/231

y(y − 1)/[(y + 17)(y + 16)] = 10/231
231y² − 231y = 10(y² + 33y + 272)
221y² − 561y − 2720 = 0

Now, total number of gems is less than 24, therefore,
‘y’ can be 6, 5, 4, 3, 2, 1

Also, in numerator of the probability, there is a 10, therefore ‘y’ should be 5 or 6
But, 6 will not satisfy the equation

Therefore,
221y² − 1105y + 544y − 2720 = 0
y(y − 5) + 544(y − 5) = 0
(y − 5)(y + 544) = 0
y = 5 (Because number of gems cannot be negative)

Required value = 10 − 5 = 5
Hence, option c.

Total number of gems in bag ‘A’ = (x + 2 + x − 4 + 7)
= (2x + 5)

According to the question,
{[(x + 2)/(2x + 5)] − [7/(2x + 5)]} = 1/5

5 × (x + 2 − 7) = 2x + 5
5x − 25 = 2x + 5
3x = 30
x = 10

Therefore, in bag ‘A’:
Number of red gems = x + 2 = 12
Number of blue gems = x − 4 = 6
Number of green gems = 7

In Bag ‘B’:
Number of red gems = 1.25 × 12 = 15
Number of blue gems = (x − 8) = 2
Number of green gems = ‘y’

Total number of gems in the bag = (y + 2 + 15)
= (y + 17)

According to the question,
(yC₂/(y + 17)C₂) = 10/231

y(y − 1)/[(y + 17)(y + 16)] = 10/231
231y² − 231y = 10(y² + 33y + 272)
221y² − 561y − 2720 = 0

Now, total number of gems is less than 24, therefore,
‘y’ can be 6, 5, 4, 3, 2, 1
Also, in numerator of the probability, there is a 10,
therefore ‘y’ should be 5 or 6
But, 6 will not satisfy the equation.
Therefore, 221y² − 1105y + 544y − 2720 = 0
y(y − 5) + 544(y − 5) = 0
(y − 5)(y + 544) = 0
y = 5 (Because number of gems cannot be negative)

Required difference = (15/22) − (6/25) = [(375 − 132)/550] = 243/550
Hence, option e.