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HPSC PGT Mathematics Mock Test - 1 - HPSC TGT/PGT MCQ


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30 Questions MCQ Test HPSC PGT Mock Test Series 2024 - HPSC PGT Mathematics Mock Test - 1

HPSC PGT Mathematics Mock Test - 1 for HPSC TGT/PGT 2024 is part of HPSC PGT Mock Test Series 2024 preparation. The HPSC PGT Mathematics Mock Test - 1 questions and answers have been prepared according to the HPSC TGT/PGT exam syllabus.The HPSC PGT Mathematics Mock Test - 1 MCQs are made for HPSC TGT/PGT 2024 Exam. Find important definitions, questions, notes, meanings, examples, exercises, MCQs and online tests for HPSC PGT Mathematics Mock Test - 1 below.
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HPSC PGT Mathematics Mock Test - 1 - Question 1

Which of the following festivals (Melas) is oraganised at Khubadu situated in district Sonepat during the months of February-March? 

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 1

The correct answer is Mela Baba Ramakshah.

Key Points

  • Baba Ramakshah Fair is organized at Khubru situated in district Sonepat during the months of February-March.
    • The fair is organized on Pooranmasi in the month of Phalguna (February-March).
  • Baba Ramakshah was a saint belonging to Sayeed Community.
    • He used to treat diseases of people with herbs.
    • He was worshipped by many folks.
    • After his death, his grave was made by Hindu and Muslim devotees.

Additional Information

  •  Khubru is a Village in Ganaur Tehsil in Sonipat District of Haryana State.
    • It belongs to Rohtak Division.
    • As per census 2011, Khubru has a total population of 3,578 peoples, out of which male population is 1,911 while female population is 1,667.
HPSC PGT Mathematics Mock Test - 1 - Question 2

In a certain code, MONK is written as 53. How will TUTOR be written in that code?

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 2

The logic follows here is :

Sum of place values of alphabets of the given word = Given number.

MONK → M + O + N + K = 13 + 15 + 14 + 11 = 53.

Similarly,

TUTOR → T + U + T + O + R = 20 + 21 + 20 + 15 + 18 = 94.

Hence, the correct answer is "94".

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HPSC PGT Mathematics Mock Test - 1 - Question 3

A man walks 30 meters towards South, then turning to his right, he walks 30 meters, then turning to his left, he walks 20 meters, again turning to his left, he walks 30 meters. How far is he from his starting point ?

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 3

A man walks 30 meters towards South, then turning to his right, he walks 30 meters, then turning to his left, he walks 20 meters, again turning to his left, he walks 30 meters. The figure are given below -

50 meters far is he from his starting point.

Hence, "50 meters" is the correct answer.

HPSC PGT Mathematics Mock Test - 1 - Question 4

Select the option which is related to the third term in the same way as the second term is related to the first term.

Synonym : Similar :: Opposite : ?

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 4

The meaning of synonym is Similar.

Similarly;

The meaning of Opposite is Adverse.

Hence, "Adverse" is the correct answer.

Additional Information

HPSC PGT Mathematics Mock Test - 1 - Question 5

Directions: In this question below is given a passage followed by several inferences. You have to examine each inference separately in the context of the passage and decide upon its degree of truth or falsity.

Passage

Independent testing of certified products is an essential feature of the BIS Certification Marks Scheme. For this purpose, BIS has a network of eight laboratories in the country, which are in a position to issue around 42000 test reports in a year. These laboratories are being constantly expanded and their testing facilities augmented and modernised. BIS has also recognised around 280 laboratories belonging to public and private sectors for testing products under its certification scheme.

Certification is a process that needs to be constantly modernised.

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 5
Definitely true. Had it not been so, why would BIS “constantly” expand and modernise its laboratories?

HPSC PGT Mathematics Mock Test - 1 - Question 6

Jatin, born on 05 January 1998, is in final year of Engineering of an Integrated course, with an aggregate of 75% till his 7th semester, he does not have any permanent body tattoos.

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 6

Hence. the person will be allowed to appear in the interview.

HPSC PGT Mathematics Mock Test - 1 - Question 7
National Education Policy 2020 suggests that assessment - 
Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 7

National Education Policy 2020 is the first education policy of the 21st century and aims to address the many growing developmental imperatives of our country. This policy replaced the 34-year-old National Policy on Education (NPE), in 1986.

Key Points

  •  National Education Policy 2020 lays emphasis on conceptual understanding and improving educational outcomes so that children can implement the acquired knowledge and skills in real-life.
  • It suggests that assessment is important to find out a child's progress over a certain period of time. 
  • Emphasizes on transforming assessment for optimizing learning and development of all students.
  • NEP aims to provide a holistic report on student’s progress and learning.
  • It should be able to depict the actual level of knowledge and performance of each student.

Thus, it is concluded that National Education Policy 2020 suggests that assessment is important to find out a child's progress over a certain period of time.

HPSC PGT Mathematics Mock Test - 1 - Question 8

The major purpose of diagnostic test is that of identifying

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 8

Diagnostic evaluation has a placement function and so takes place before instruction. It is used to determine underlying causes of learning difficulties. Diagnostic evaluation may include administration of standardised achievement tests, standardised diagnostic tests, teacher-made tests, observation and checklists. Scoring and interpretation can be normative (based on norms) or criterion-referenced. Results are usually shown as an individual profile of sub-skills.

HPSC PGT Mathematics Mock Test - 1 - Question 9

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 9

HPSC PGT Mathematics Mock Test - 1 - Question 10

A first order linear differential equation. Is a differential equation of the form

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 10

A first order linear differential equation. Is a differential equation of the form  + Py = Q or  + Px = Q

HPSC PGT Mathematics Mock Test - 1 - Question 11

Let X = {x | x = 2 + 4k, where k = 0, 1, 2, 3,...24}. Let S be a subset of X such that the sum of no two elements of S is 100. What is the maximum possible number of elements in S ?  

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 11

Calculation:

The set X is given by

{2, 6, 10, 14, 18, 22, 26, 30, 34, 38, 42, 46, 50, 54, 58, 62, 66, 70, 74, 78, 82, 86, 90, 94, 98}.

We want to find the maximum size of a subset S of X such that no two

elements sum to 100.

The pairs in X that sum to 100 are

(2, 98), (6, 94), (10, 90), (14, 86), (18, 82), (22, 78), (26, 74), (30, 70), (34,

66), (38, 62), (42, 58), (46, 54).

Therefore, 

S = {2, 6, 10, 14, 18, 22, 26, 30, 34, 38, 42, 46, 50}

∴ The maximum possible number of elements in S be 13.

HPSC PGT Mathematics Mock Test - 1 - Question 12

The mirror image of the parabola y2 = 4x in the tangent to the parabola to the point (1,2) is

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 12

Any point on the given parabola is (t2, 2t). The equation of the tangent at (1,2) is x-y +1 = 0. The image (h,k) of the point (t2,2t) in x-y + 1 = 0 is given by 

∴ h = t2 - t2 + 2t - 1 = 2t - 1
Eliminating t from h = 2t – 1 and k = t2+1
we get, (h+1)2 = 4(k-1)
The required equation of reflection is (x+1)2 = 4(y-1)

HPSC PGT Mathematics Mock Test - 1 - Question 13

The value of the limit 

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 13

 lim (x2-9)/x3+9x-6x2
Lim x=0
lim[(0)2 - 9]/ (0)3 + 9(0) - 6(0)2
-9/0 (which is not defined)

HPSC PGT Mathematics Mock Test - 1 - Question 14

sin (n+1)x cos(n+2)x - cos(n+1)x sin(n+2)x =

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 14

sin(n+1)x cos(n+2)x - cos(n+1)x sin(n+2)x
⇒ sin[(n+1)x - (n+2)x] 
As we know that sin(A-B) = sinA cosB - cosA sinB
⇒ sin(n+1-n-2)
sin(-x) 
= -sinx

HPSC PGT Mathematics Mock Test - 1 - Question 15

The three arithmetic mean between – 2 and 10 are:

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 15

HPSC PGT Mathematics Mock Test - 1 - Question 16

Let f (x) = |x - 1| + |x + 1|

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 16

HPSC PGT Mathematics Mock Test - 1 - Question 17

If A’ is the transpose of a square matrix A , then

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 17

The determinant of a matrix A and its transpose always same.

HPSC PGT Mathematics Mock Test - 1 - Question 18

Let two numbers have arithmetic mean 9 and geometric mean 4. Then these numbers are the roots of the quadratic equation

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 18

Let the two numbers be α and β. Given that 

∴ Required equation is x2 – 18x + 16 = 0 

HPSC PGT Mathematics Mock Test - 1 - Question 19

The triangle PQR is inscribed in the circle x2 + y2 = 25. If Q and R have coordinates (3, 4) and (–4, 3) respectively, then ∠QPR may be equal to

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 19



(i.e. angle subtended at the centre of a circle is double the angle subtended in the alternate segment).
Hence (c) is the correct answer.

HPSC PGT Mathematics Mock Test - 1 - Question 20

If f (x) = cos [π2] x + cos [- π2] x where [x] is the step function, then

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 20

cos 9x + cos (-10) x = cos 9x + cos10x

f (0) = cos0 + cos0 = 2,f (π/4) = cos9 π/4 + cos5π/2 = cos π/ 4 =
f (π/2) = cos9π/2 + cos5π = 0 -1 = -l,f (π) = cos9π + cos10π = - l +1 = 0.

HPSC PGT Mathematics Mock Test - 1 - Question 21

For all complex numbers z1 ,z2 satisfying |z1| = 12 and |z2 - 3 - 4i| = 5 , the minimum value of  |z1 -z2| is 

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 21

Minimum value of |z1 - z2| = 12 - 10 = 2

HPSC PGT Mathematics Mock Test - 1 - Question 22

is a vector joining two points P(x1, y1, z1) and Q(x2, y2, z2). If  Direction cosines of  are

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 22

is a vector joining two points P(x1, y1, z1) and Q(x2, y2, z2). If  Direction cosines of  are given by : 

HPSC PGT Mathematics Mock Test - 1 - Question 23

The number of different ways in which a man can invite one or more of his 6 friends to dinner is

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 23

He can invite one or more friends by inviting 1 friend, or 2 friends or 3 friends, or all the 6 friends.
1 friend can be selected out of 6 in 6C1 = 6 ways
2 friends can be selected out of 6 in 6C2 = 15 ways
3 friends can be selected out of 6 in 6C3 = 20 ways
4 friends can be selected out of 6 in 6C4 = 15 ways
5 friends can be selected out of 6 in 6C5 = 6 ways
6 friends can be selected out of 6 in 6C6 = 1 ways
Therefore the required number of ways (combinations) = 6 + 15 + 20 + 15 + 6 + 1 = 63

HPSC PGT Mathematics Mock Test - 1 - Question 24

The domain of log (x - 3) (5- x) is

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 24

log (x - 3) (5 - x) exists ⇒ (x - 3) (5 - x) > 0
⇒ (x -3)(x -5) < 0 ⇒ 3< x < 5
∴ Domain = (3, 5).

HPSC PGT Mathematics Mock Test - 1 - Question 25

The period of the function y = tan x is

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 25

The period of y=tanx is π.
Since the function y = tan x is periodic of period π hence each branch is simply a repetition of the branch from - 
(-π/2 , π/2).

HPSC PGT Mathematics Mock Test - 1 - Question 26

Find the direction cosines of the vector 

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 26



HPSC PGT Mathematics Mock Test - 1 - Question 27

If  + ...... up to ∞ =, then  + ..... =

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 27

(1/12 + 1/22 + 1/32 + ........∞) = π2/6
⇒ (1/12 + 1/32 + 1/52 + ........∞) + (1/22 + 1/42 + 1/62 + ........∞) = π2/6
=> (1/12 + 1/32 + 1/52 + ........∞) + 1/22(1/12 + 1/22 + 1/32 + ........∞) = π2/6
=> (1/12 + 1/32 + 1/52 + ........∞) + 1/222/6) = π2/6
=> (1/12 + 1/32 + 1/52 + ........∞) + π2/24 = π2/6
= π2/8

HPSC PGT Mathematics Mock Test - 1 - Question 28

The area bounded by the curve y = 2x - x2 and the line x + y = 0 is

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 28

The equation y = 2x − x2 i.e. y – 1 = - (x - 1)2 represents a downward parabola with vertex at (1, 1) which meets x – axis where y = 0 .i .e . where x = 0 , 2. Also , the line y = - x meets this parabola where – x = 2x − x2 i.e. where x = 0 , 3. 
Therefore , required area is :

HPSC PGT Mathematics Mock Test - 1 - Question 29

The area of the figure bounded by the curve y = logex , the x – axis and the straight line x = e is

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 29

Required area :

HPSC PGT Mathematics Mock Test - 1 - Question 30

For positive integers n, (1 + x)n > 1 + nx ; (x > – 1) when

Detailed Solution for HPSC PGT Mathematics Mock Test - 1 - Question 30

(1 + x)n > 1 + nx
For n = 1, (1 + x)n = (1 + x)1 = 1 + x
1 + nx = 1 + x
(1 + x)n = 1 + nx        
For n = 2, (1 + x)n = (1 + x)2 = 1 + x2 + 2x
1 + nx = 1 + 2x
(1 + x)n ≥ 1 + nx (Equality when x = 0)
So, (1 + x) n > 1 + nx for n ≥ 2 

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