Quant Quiz
Directions : From a class total 360 students appeared in an exam. Three fourth of these are boys. 40 % boys failed in the exam,
two third of the girls are failed in the exam and remaining passed :
1.What is the ratio of the total number of girls to the number of boys who failed in the exam ?
1) 4 : 9
2) 9 : 5
3) 5 : 6
4) 6 : 3
5) None of these
2.What is the sum of the number of boys who failed and number of girls who passed in the exam ?
1) 148
2) 158
3) 128
4) 138
5) None of these
3.What is the difference between the number of boys who are passed and number of girls who are failed ?
1) 102
2) 202
3) 52
4) 302
5) None of these
4.What is the ratio of the total number of boys and girls who are passed to the number of boys and girls who are failed ?
1) 7 : 8
2) 8 : 7
3) 9 : 17
4) 5 : 7
5) None of these
5. Total number of boys passed is approximately what percent of total number of girls in the class ?
1) 60 %
2) 120 %
3) 150 %
4) 180 %
5) 270 %
Direction: A bag contains 4 red, 5 brown and 6 white balls. Three balls are drawn randomly :
6.What is the probability that balls drawn contains exactly two red balls ?
1) 54/145
2) 66/455
3) 46/105
4) 31/455
5) None of these
7.What is the probability that the balls drawn contains no brown ball ?
I) 11/65
2) 31/91
3) 24/91
4) 31/455
5) None of these
8.What is the probability that the balls drawn are not of the same colour ?
1) 34/455
2) 31/105
3) 74/105
4) 421/455
5) None of these
9. If two balls are drawn randomly then what is the probability that both the balls are of same colour ?
1) 31/105
2) 74/105
3) 34/455
4) 421/455
5) None of these
10.What is the probability that the three balls drawn are of different colour ?
1) 21/91
2) 31/105
3) 24/105
4) 24/91
5) None of these
ANSWERS:
1. 3
Ratio = 90/108 = 5/6
2. 4
Sum = 108 + 30 = 138
3. 1
Diff = 162 - 60 = 102
4. 2
Ratio = 192/168 = 8/7
5. 4
Req% = 162/90 * 100 = 180%
6. 2
n(S) = 15C3 = (15 * 14 * 13)/6 = 455
2 red balls can be selected in 4c2 = 6 ways
And remaining one ball can be selected in 11C1 = 11 ways
P(E) = (6 * 11)/455 = 66/455
7. 3
n(S) = 15C3 = 455
Three balls have to be selected from 4 red and 6 white balls
No. of ways = 10C3 = 120
P(E) = 120/455 = 24/91
8. 4
n(S) =15C3 = 455
If all three ball are of same colour, number of ways
= 4C3 + 5C3 + 6C3 = 4 + 10 + 20 = 34
P(E) = 34/455
For being different colour P(E) = 1 - 34/455 = 421/455
9. 1
n(S) = 15C2 = 105
n(e) = 4C2 + 5C2 + 6C2 = 6 + 10 + 15 = 31
P(E) = 31/105
10. 4
n(S) = 15C3 = 455
n(E) = 4C1 + 5C1 + 6C1 = 4 * 5 * 6 = 120
P(E) = 120/455 = 24/91
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