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RRB JE IT (CBT I) Mock Test- 3 - Computer Science Engineering (CSE) MCQ


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30 Questions MCQ Test RRB JE Mock Test Series for Computer Science Engineering 2025 - RRB JE IT (CBT I) Mock Test- 3

RRB JE IT (CBT I) Mock Test- 3 for Computer Science Engineering (CSE) 2024 is part of RRB JE Mock Test Series for Computer Science Engineering 2025 preparation. The RRB JE IT (CBT I) Mock Test- 3 questions and answers have been prepared according to the Computer Science Engineering (CSE) exam syllabus.The RRB JE IT (CBT I) Mock Test- 3 MCQs are made for Computer Science Engineering (CSE) 2024 Exam. Find important definitions, questions, notes, meanings, examples, exercises, MCQs and online tests for RRB JE IT (CBT I) Mock Test- 3 below.
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RRB JE IT (CBT I) Mock Test- 3 - Question 1

If sinθ + sin2θ = 1, then the value of cos12θ + 3 cos10θ + 3 cos8θ + cos6θ – 1 is:

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 1

sinθ + sin2θ = 1 ⇒ sinθ = cos2θ

Given : cos12θ + 3 cos10θ + 3 cos8θ + cos6θ–1

= (cos4θ + cos2θ)3 – 1 = (sin2θ + cos2θ)3 – 1 = 1 – 1 = 0

RRB JE IT (CBT I) Mock Test- 3 - Question 2

The height of an equilateral triangle is 4√3 cm, then what will be the area of the equilateral triangle?

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 2
Height = 4√3 cm

Thus, side of equilateral triangle = 8 cm

Area of equilateral triangle = √3 / 4 x 82 = 16 √3 cm2

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RRB JE IT (CBT I) Mock Test- 3 - Question 3

If 10 men can do a work in 6 days and 15 women can do the same in 5 days, Then 8 men and 5 women can together do the work in :

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 3

10 Men can do the work in 6 days

If the work is to be finished in 5 days, number of women required = 15

If the work is to be finished in 6 days, number of women required =[15×5]/6 = 25/2

So that 10 men = 25/2 women

or 5 women = 4 men

8 men + 5 women = 8 men + 4 men = 12 men

Now 10 men can finish the work in = 6 days

∴ 12 men can finish the work in [6×10]/12=5 days

RRB JE IT (CBT I) Mock Test- 3 - Question 4

The average of two numbers is 8 and that of another three numbers is 3. The average of these five numbers is-

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 4

n1A1 + n2A2 / n1 + n2

= 2 x 8 + 3 x 3 / 2 + 3

= 16 + 9 / 5

⇒ 25 / 5 = 5

RRB JE IT (CBT I) Mock Test- 3 - Question 5

Which of the following is obtained after the rationalization of the expression 1/(√2+√3+√5)?

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 5

A = 1 / √2 + √3 + √5

= √2 + √3 - √5 / (√2 + √3 + √5)(√2 + √3 - √5)

= √2 + √3 - √5 / (√2 + √3)2 - (√5)2

= √2 + √3 - √5 / (2√6)

= √12 + √18 - √30 / 12

= (2√3+3√2−√30)/12

RRB JE IT (CBT I) Mock Test- 3 - Question 6

If sin θ=8/17, where 0o<θ<90o, then tan θ+sec θ is:

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 6

Using Pythagoras theorem

AC2 = AB2 + BC2

(17)2 = AB2 + (8)2

AB2 = 289 - 64

AB = √225

AB = 15

So, tanθ + secθ = 8 / 15 + 17 / 25 = 25 / 15 = 5 / 3

RRB JE IT (CBT I) Mock Test- 3 - Question 7

OA, OB, OC are 3 lines in a plane that meet at O. If the angles ∠AOB, ∠BOC, ∠COA are 2x, 5x, 8x respectively (where x is a positive angle), then x equals:

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 7

2x + 5x + x = 360o

15x = 360o

x = 360o / 15

= 24°

RRB JE IT (CBT I) Mock Test- 3 - Question 8

The value of tan 31° tan 33° ... tan 59° is equal to:

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 8

tan 31°. tan 32°. tan 33° .... tan 59°

= tan 31 °.tan 32°. tan 33° ... tan 57°. tan 58°. tan 59°

= tan 31º. tan 32°. tan 33° ... cot 33°. cot 32°. cot 31° = 1

[tan (90°-θ) = cotθ and tanθ cotθ =1]

RRB JE IT (CBT I) Mock Test- 3 - Question 9

If x = 81, then the value of (x1/4 -1) (x1/4+1) is:

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 9

(x1/4 -1)(x1/4+1) = (x1/4 )2 - (1)2

x1/2 - 1 = (81)1/2 - 1 = 9 - 1 = 8

RRB JE IT (CBT I) Mock Test- 3 - Question 10

A man sells two scooters for Rs.12000 each. He makes a profit of 20% on one and a loss of 20% on the other. The profit/loss, on the whole, is

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 10

SP1 = 12000

profit = 20%

∴ CP1 = 12000/120 x 100 = Rs.10,000

SP2 = 12000

Loss % = 20%

∴ CP = 12000/80 x 100 = Rs.15,000

Total CP = 25000

Total SP = 24000

Loss = Rs.25000 – Rs.24000 = Rs.1000

(or)

If the selling price of the two items is equal and the percentage of profit on one equals the percentage of loss on the other, then, the result is always loss and the percentage of loss is (loss%2/100).

Hence, in the present case, loss percentage = (20)2/100 percent = 4%.

Loss = 4/96 × Rs.24000 = Rs.1000

RRB JE IT (CBT I) Mock Test- 3 - Question 11

A train covers a certain distance in 50 minutes if it runs at a speed of 48 km/hr on an average. The speed at which the train must run so that time of the journey becomes 40 minutes?

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 11

Distance travelled in one hour = 48 km.

Distance travelled in 50 minutes = 48 / 60 x 50 = 40 km

Time to be reduced is 40 min. 40 / 60 hr

Required speed = 40 / 40/60 = 40 x 60 / 40 = 40 km/hr

RRB JE IT (CBT I) Mock Test- 3 - Question 12

The pie chart given here shows expenditures incurred by a family on various items and their savings, which amount to Rs. 8,000 in a month.

Study the chart and answer the questions based on the pie chart.

How much expenditure is incurred on education?

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 12

60o = ₹8000

Total expenditure

300o = 8000 / 60 x 300 = ₹40,000

Expenditure on education

= 30 / 300 x 40,000 = ₹4000

RRB JE IT (CBT I) Mock Test- 3 - Question 13

The pie chart given here shows expenditures incurred by a family on various items and their savings, which amount to Rs. 8,000 in a month.

Study the chart and answer the questions based on the pie chart.

The ratio of the expenditure on food to the savings is:

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 13

Expenditure on food

=(120/300)×40,000=₹16,000

Required ratio = 16000 : 8000 ⇒ 2 : 1

RRB JE IT (CBT I) Mock Test- 3 - Question 14

A solid metallic cone of height 10 cm and radius of base 20 cm is melted to make spherical balls each of 4 cm diameter. How many such balls can be made?

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 14

Volume of cone = 1/3πr2h

=(1/3)×π×(20)2×10

=400×10

=(π/3)×4000=(4000/3)π

The volume of spherical balls = 4/3πr3

=(4/3)×π×(2)2

= 32/3π

∴ Spherical balls are formed from the cones.

∴ The total volume of all spherical cones = Volume of cones.

∴ No. of spherical balls = Volume of cone/Vol of 1 spherical ball

=4000/3

=32/3

=4000/32=125

RRB JE IT (CBT I) Mock Test- 3 - Question 15

Sum of the lengths of any two sides of a triangle is always greater than

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 15
The sum of the other two sides of a triangle is always greater than the third side.
RRB JE IT (CBT I) Mock Test- 3 - Question 16

If D is a point on the side AB of triangle ABC and DE is a line through D meeting AC at E such that ∠ADE = ∠ACB, then AB. AD is equal to:

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 16

Clearly, △ADE and △ABE are similar

Therefore,

AD / AC = AE / AB

AD.AB = AE.AC

RRB JE IT (CBT I) Mock Test- 3 - Question 17

A man can row 15 km per hour downstream and 9 km per hour upstream. The speed (in km/hour) of the boat in still water is:

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 17

The speed of boat in still water = ½ (Rate downstream + Rate upstream

The speed of boat in still water = 1/2 (15 + 9) = 24 /2 = 12 km/hr

RRB JE IT (CBT I) Mock Test- 3 - Question 18

If x : y = 3 : 4, then the value of (5x - 2y)/(7x+2y)

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 18

x / y = 3 / 4(Given)

=

= 7 / 29

RRB JE IT (CBT I) Mock Test- 3 - Question 19

The sum of the numerator and denominator of a certain fraction is 8. If 2 is added to both the numerator and the denominator the value of the fraction increased by 4/35, then the fraction is:

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 19

Let fraction be x/y by given condition

x + y = 8 …………(i)

and x + 2 / y + 2 - x / y = 4 / 35

or 2x + 2y -xy -2x / y(y +2) = 4 / 35

or 2(y -x) / y(y +2) = 4 / 35

or 35 (y - x) = 2y (y + 2) …………(ii)

From (i)

x = 8 - y

substituting this value in (ii)

35 (y - 8 = y) - 2y(y + 2)

35 (y - 4) = y (y + 2)

y2 - 33y + 140 = 0

y = 28 or 5

We cannot take , taking y = 5 x will become 3

Therefore x / y = 3 / 5

RRB JE IT (CBT I) Mock Test- 3 - Question 20

The simple interest on a certain principal at the rate of 9.5 percent per annum is Rs 950 for two years. How much will be the additional interest on the same amount for the same period at the rate of 10.5 percent per annum?

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 20

S.I. = Rs 950, rate = 9.5%

time = 2 years

∴ sum =(950×100)/(9.5×2)=5000

If rate of interest is 10.5% then

Simple Interest=(5000×2×10.5)/100=Rs 1050

∴ additional interest due to change in rate of interest =Rs 100

RRB JE IT (CBT I) Mock Test- 3 - Question 21

If the angle of elevation of the top of a tower from two points at the distance x and y meter from the base and in the same straight line with it are complementary, then the height of the tower is?

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 21

 

Let AB be tower and C and D be the point of observation on AC.

∠ACB = ?, ∠ADB = 90 - ?, AB = h m

AC = X m

AD = Y m

So, CD = x -y m

And tan(90 - ?) = h / y

⇒ h / x X h / y = 1

⇒ h2 = xy

⇒ h = √xy m

RRB JE IT (CBT I) Mock Test- 3 - Question 22

Kamya purchased an item of 46,000 and sold it at a loss of 12%. With that amount, she purchased another item and sold it at a gain of 12%. What was her overall gain/loss?

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 22
SP of first article = (46000×88)100=₹40,480

SP for second article = (40480×112)/100=₹45,337.60

∴ Loss = 46000 - 45337.60 = ₹662.40.

RRB JE IT (CBT I) Mock Test- 3 - Question 23

The owner of a cell phone shop charges his customer 23% more than the cost price. If a customer paid Rs.7,011 for a cell phone, then what was the cost price of the cell phone?

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 23

Let the cost price of cell phone be Rs. x

According to the question,

[(100+23)/100] × x = 7011

Or, x = (7011×100)/123 = 5700

RRB JE IT (CBT I) Mock Test- 3 - Question 24

The cost of an article was Rs.75. The cost was first increased by 20% and later on, it was reduced by 20%. The present cost of the article is:

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 24
Effective decrease

= [20 – 20 – 20×(20/100)] % = -4%

∴ Present cost of the article = 96% of Rs.75

= (75×96)/100 = Rs.72

RRB JE IT (CBT I) Mock Test- 3 - Question 25

A rectangular box measures internally 1.6 m long, 1 m broad and 60 cm deep. The number of cubical blocks each of edge 20 cm that can be packed inside the box is:

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 25

Volume of rectangular box = 160 x 100 x 60 cm3

and volume of one cubical block = 20 x 20 x 20 cm3

∴ Required number of cubical block = (160×100×60)/(20×20×20) = 120 blocks

RRB JE IT (CBT I) Mock Test- 3 - Question 26

The diameter of the curved surface of a bucket are 28 decimetres and 14 decimetres and its height is 12 decimeter. Find its volume.

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 26
Volume

=

=

= 1 / 3 x 22 / 7 x 12 / 10(142 + 72 + 98)

= 22 x 4 x49

= 4312 decimeter3

RRB JE IT (CBT I) Mock Test- 3 - Question 27

What will be the area of a rhombus, whose one side is 20 cm and one diagonal is 24 cm?

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 27

Let the length of another diagonal = 2x

Diagonals of rhombus intersect at right angles, so using pythagoras theorem,

x2 + 122 = 202

Therefore x = 16, So diagonal = 2x16 = 32

Area of rhombus

diagonal x diagonal / 2

= 32 x 24 / 2 = 384 cm2

RRB JE IT (CBT I) Mock Test- 3 - Question 28

The ratio of two unequal sides of a rectangle is 1: 2. If its perimeter is 24 cm, then the length of diagonal in cm is:

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 28

Let the sides of rectangle be 2x, x cm

∴ Perimeter of rectangle = 2 (2x+x)

2 (2x+x) = 24

or 6x = 24

∴ x = 4 cm

hence length of diagonal = √[(2x)2+x2]

= √5x2

= √(5×16)

=√ 80

= 4√5

RRB JE IT (CBT I) Mock Test- 3 - Question 29

8 hours of work for a woman is equal to 6 hours of work for a man or 12 hours of work for a boy. If 9 men working 6 hours daily can complete a work in 6 days, then in how many days 12 men, 12 women and 12 boys working 8 hours daily will complete the same work?

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 29

1 man done work in 6×6×9 hours

Since 8W=6M=12B

therefore 12M+12W+12B=27M

therefore 27 men will do work in (6×6×9/27)=12 hours

=12/8=1.5 days

RRB JE IT (CBT I) Mock Test- 3 - Question 30

In an examination, the average marks were found to be 50. For deducting marks for computational errors, the marks of 100 candidates had to be changed from 90 to 60 each and so the average of marks came down to 45. The total number of candidates, who appeared at the examination, was:

Detailed Solution for RRB JE IT (CBT I) Mock Test- 3 - Question 30

Let the total number of candidates be x.

∴ 50x - 30 × 100 = 45x

⇒ 5x = 3000

⇒ x = 3000/5 = 600

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