UPSC Prelims Past Year Paper 2019: Paper 2 (CSAT) - UPSC MCQ

First, you need to know how many 5's are there from 1 to 100.

5, 15, 25, ... , 95 = ten 5s at the unit's place.

50, 51, ..., 59 = ten 5s at the ten's place.

So, occurrence of 5 from 1 to 100 = 20 times.

So, from 1 to 1000, 5's in tens and units place would be 20 x 10 = 200 times

Occurrence of 5 at hundredth place from 500 to 600 = 100 times

Therefore, total number of times 5 digit would appear = 200 + 100 = 300.

Size of bigger cubes is twice the size of smaller cubes. Also, as none of the faces of the bigger cubes is painted blue, so each one of the bigger cube has one face painted yellow, one is black and all other faces are unpainted.

Number of cubes with one face painted = 8

Number of cubes with two faces painted = 8 smaller cubes on each of blue painted surface + 4 bigger cubes

= (8 x 2) + 4 = 20

The correct option is C.

Step-by-step explanation:

Step 1- assume the weight of A=100%

Step 2-if you place B on A 60% increases

i.e, 100%+60%= 160%

Step 3- If you remove B with respect to total weight of A and B

i.e, total [A+B]-B= 160% - 60%

Reduction in weight with respect to total weight of A and B

(A/A+B) × [A+B]-B = 100/160 × 60 %

=37.5% is the answer

5th Monday of April can be

either 29th April or 30th April

Case 1 : 29th April is 5th Monday

then 1 + 31 + 30 + 31 + 31 + 30 + 31 + 1 = 186 Days = 26*7 + 4

=> so 1 November will be Friday

=>  which means 29th , 30th Nov are  Friday & Saturday

so there's no 5th Thursday in November when 5th Monday of April is on 29th .

Case 2 :  30th April Monday is 5th Monday

then 31 + 30 + 31 + 31 + 30 + 31 + 1 = 185 Days = 26*7 + 3

=> so 1 November will be Thursday

=> which means 29th Nov is 5th Thursday, which is our case

=> so 6th Dec is also Thursday

6 + (2 * 7) = 20

=> So, 20th Dec is also Thursday (3rd Thursday of December)

The conclusion of 'Some rats are cats' is 'Some cats are rats'. So conclusion III is valid. No conclusion can be drawn in terms of rats and dogs as statement I and II both are starting with 'some'. So, conclusion II is not valid. That eliminates all options except option (c).

The only conclusion in terms of cat and cow will be 'Some cats are not cows'. So conclusion I is not valid.

In the diagram, let’s count the parallelograms one by one.

Case I - Parallelograms of 1 × 1 (ABFE type) - ABFE, BCGF, CDHG, EFJI, FGKJ, GHLK, IJNM, JKON, KLPO – total 9.

Case II - Parallelograms of 1 × 2 (ACGE type) - ACGE, BDFH, EGKI, FHLJ, IKOM, JLPN – total 6.

Case III - Parallelogram of 2 × 1 (ABJI type) - ABJI, EFNM, BCKJ, FGON, CDLK, GHPO – total 6.

Case IV - Parallelograms of 1 × 3 (ADHE type) - ADHE, EHLI, ILPM – total 3.

Case V - Parallelograms of 3 × 1 (ABNM type) - ABNM, BCON, CDPO – total 3.

Case VI - Parallelograms of 2 × 2 (ACKI type) - ACKI, BDLJ, EGOM, FHPN – total 4.

Case VII - Parallelograms of 3 × 2 (ADLI type) - ADLI, EHPM – total 2.

Case VIII - Parallelograms of 2 × 3 (ACOM type) - ACOM, BDPN – total 2.

Case IX -Parallelograms of 3 × 3 (ADPM type) – ADPM – total 1.

Total 36.

A much shorter method is by using permutations and combinations.

Select any two of the first set of 4 lines. That can be done in ⁴C₂ ways.

Now select any two of the second set of 4 lines. That can also be done in ⁴C₂ ways.

So the total number of ways of doing it = ⁴C₂  x ⁴C₂ = 6 x 6 = 36 ways.

The required number should be completely divisible by both 4 and 6. That means it should be divisible by LCM of 4 and 6, which is 12. Such 8 numbers are possible which are completely divisible by 12. They are 12, 24, 36, 48, 60, 72, 84 and 96.

This can be solved mentally. 12 km is 80% of whole race

i.e  8/10 = 4/5 of the whole race. So whole race must be 15 km.

In this question 12 km is 80% of the total race.

=> 12 km = 0.8 R => R = 12 / 0.8 = 15.

So total race will be of 15 km. 

In this question Rs. 9000 is 75% of the cost of mobile phone. So total cost of mobile phone is Rs. 12000 ( = 9000 / 0.75). Now, as he borrows Rs. 2000, he will be still short of Rs.1000 to buy the phone.

Answer:

Meenu's year of birth - 1994

Step-by-step explanation:

in 2002 Meenu's age was one third of the age of Meera where as in 2010,Meenu's age was half of the age of Meera.

Let say Meenu's age in 2002 = M Years

Meenu's age was one third of the age of Meera

so, Meera's age in 2002 = 3M

in 2010 i.e 8 years after 2002

Meenu's age was half of the age of Meera

Meenu age = M + 8

Meera age = 3M + 8

2(M + 8) = 3M + 8

=> 2M + 16 = 3M + 8

=> M = 8

Meenu was 8 years old in 2002

so Meenu was born in 2002-8  = 1994

Meenu's Year of Birth = 1994

Let the cost of each ball is Rs. X. Then cost of each racket will be 3X.

Cost of 10 balls = 10X, and cost of 10 rackets = 30X.

So total cost = 10X + 30X = 40X.

By the condition given in question, we have

40X = 1300 + 1500 or 40X = 2800 or X = 70. Price of each racket = Rs. 210.

Let’s try to maximise the number of Indian-Vegetarians. Out of 70 Indians, all vegetarians (i.e, 60) can be Indians. So, at least 10 Indians will be there who will be non-vegetarians. This number can increase depending on the number of vegetarian-Indians.

Let’s try to minimise the number of Indian-Vegetarians. For that we have maximise the number of non-Indian-Vegetarians. Out of 30 Non-Indians, at max all can be vegetarian. Still 30 vegetarians remain which will fall under Indian category. So, at least 30 Indians will be there who will be vegetarians. Hence both statements are correct.

Option (b) is not relevant to this passage. Option (c) is an extreme, and is not stated thus, in the passage. Option (d) is wrong, as the passage indicates otherwise (last part). Best answer is option (a), as the passage criticizes the approach of private corporations, and indicates what India really needs (which private firms won’t do, and hence only public enterprises can or have to)

Assumption 1 is correct, as that is clearly mentioned in the passage. Assumption 2 is too broad, as it assumes that GM technology will “never” be able to do it, which may be wrong. Hence, option (a) is best.

Option (d) uses the term “foreign plants” which makes in unsuitable. Same holds for options (b) and (c) too.

Option (d) uses the term “foreign plants” which makes in unsuitable. Same holds for options (b) and (c) too. Hence, option (a) is best, which is correct also as per the passage. Even if we do not use this logic (trick), option (b) is too extreme as in some cases we may need such laws. Option (c) is not the most logical inference (due to “sometimes”). Option (d) seems a strange way to go about it (we should rather protect our own indigenous biodiversity than destroy it). Hence (a) is best.

Options (a) and (b) are clearly wrong. Option (c) is not wrong, as that is one logic given right at the start. But option (d) is best as it covers option (c) as well. If we start involving peoples’ groups in city planning, then automatically we will have the interests of working class and poor people taken care of. In fact, much more than that is possible then.

Statement 4 is not mentioned anywhere. So, options (b) and (d) are ruled out. Now check statement 3. It is a big assumption we need to make to equate service sector with organized sector keeping in mind the growth of economy coming largely from services. That is nowhere mentioned in the passage. Hence, 3 is not correct. Hence, option (c) is ruled out. Hence, (a) is best.

Precondition - five floors are painted with 4 different colours.

Statement 1 – The middle three floors are painted in different colours does not guarantee any two consecutive floors of different colours as the colour of “I and II” or “IV and V” can be same.

Statement 2 – Second (II) and the fourth (IV) floors are painted in different colours does not guarantee any two consecutive floors of different colours as the colour of I and II or II and III, III and IV or IV and V can be same.

Statement 3 will ensure that any two consecutive floors have different colours as there are only four colours to be used. The remaining three floors will have different colours

A direct application of Pythagoras theorem.

Refer to the diagram given :

Using Pythagoras theorem –

Distance between Q and R
= √( (80)²+ (60)² )=√(6400+3600)=√10000=100 km

Percentage of members went for shopping  = 80%

percentage of members went for sightseeing = 50%

Percentage of members took rest in the hotel = 10%

Members who either went for shopping or sightseeing or both

= 100% - 10% = 90%

Members who went for both shopping and sightseeing

= 80% + 50% - 90% = 40%

Members who went only for shopping = 80% - 40% = 40%

40% members went for shopping as well as sightseeing.

and 40% members went for only shopping.

60% students play cricket. So, 40% students play football. All football players have two-wheelers. It doesn't conclude that 60% students do not have two-wheelers. Statement 1 is false.
It is not mentioned whether cricketer has two-wheelers or not. So, statement 2 is false.
A student who does not play cricket, plays football. Nothing is mentioned about students who play cricket. Statement 3 is also false.
The correct option is A.

Let the two digit number be 10a + b and the number formed by reversing  its digits be 10b + a.

70a + 7b = 40b + 4a
66a = 33b
Therefore, 
So, let us list down all possible values for a and b.

Hence, the sum of all the numbers would be, 
12 + 21 + 24 + 42 + 36 + 63 + 48 + 84 = 330.

Check options directly.

Start with (a). If B is 360, A will be 380. Now, 5% of 380 = 19. So B will become 380 – 19 = 361. Hence this option is wrong (B is 360, not 361).

If B is 380, A will be 400. Now, 5% of 400 = 20. So B will be 400 – 20 = 380. Hence (b) is correct. You do not need to check options (c) and (d) at all.

Seeta next - 4th | 7th | 10th | 13th
Geeta next - 5th | 9th | 13th
Seeta went on 1st so 2nd 3rd off & next class on 4th.
Similarly
Geeta went on 1st so 2nd 3rd 4th off & next class on 5th and so on.

In the 1000 m race, X gives Y 40 m start. That means Y starts race 40 m ahead of X.

In the 1000 m race, X gives Z 64 m start. That means Z starts race 64 m ahead of X

So, this means Y gives a lead of 24 m in a 1000 – 40 = 960 m race.

So, by unitary method, lead given by Y in 1000 m = 24/960×1000 = 25 m.

Given that x is greater than or equal to 25. Also, y is less than or equal to 40.

Let’s try to find the various values of y – x.

If y = 40, x can take various values like 25, 26, 27, ....... (not necessarily integers – not given in question) In that case y – x will take values like 15, 14, 13, 12,......0, - 1 etc.

If y = 39, x can take various values 25, 26, 27.... (not necessarily integers) In that case y – x will take values like 14, 13, 12, 11 ..... 0, - 1 etc.

Similarly, if y = 38, values of y – x will be 13, 12, 11, ..... 0, -1 etc. and so on.

So, we can say that value of y – x is less than or equal to 15 in all cases.

Ena's present age = 13

Ena's mother's present age = 13 + 24 = 37.

Ena's father's present age = 37 + 3 = 40.

Now at present Ena is 13 years old and her parents got married 4 years before she was born.

So, Ena's parents got married 13 + 4 = 17 years earlier.

So at the time of marriage her father would be of 40 – 17 = 23 years old

Discount = Marked Price – Selling Price.
Let the Marked Price of 10 articles = Rs. 100.

So, Marked Price of 8 articles = Rs. 80. (so each was marked at Rs.10)

So, as per the question, Rakesh purchased 10 mobile phones for Rs. 80

So, the selling price of 10 mobile phones = Rs. 80 (so each bought at Rs.8)

The discount is 2 rupees on 10 which is 20%.

[Also, discount % = Discount × 100/ MP = 20 × 100/100 = 20%]