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UP PGT Math Mock Test - 4 - UPTET MCQ


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30 Questions MCQ Test UP PGT Mock Test Series 2024 - UP PGT Math Mock Test - 4

UP PGT Math Mock Test - 4 for UPTET 2024 is part of UP PGT Mock Test Series 2024 preparation. The UP PGT Math Mock Test - 4 questions and answers have been prepared according to the UPTET exam syllabus.The UP PGT Math Mock Test - 4 MCQs are made for UPTET 2024 Exam. Find important definitions, questions, notes, meanings, examples, exercises, MCQs and online tests for UP PGT Math Mock Test - 4 below.
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UP PGT Math Mock Test - 4 - Question 1

Law of cosine can be applied to

Detailed Solution for UP PGT Math Mock Test - 4 - Question 1

Laws are trigonometry can be applied to all type of triangles. These rules are generalised.

UP PGT Math Mock Test - 4 - Question 2

The sum of cubes of three consecutive natural numbers is divisible by:

Detailed Solution for UP PGT Math Mock Test - 4 - Question 2

n3 + (n+1)3 + (n−1)3
=3(n)3 + 6n
=3n(n2 + 2)
=3n(n2 − 1 + 3)
=3(n(n−1)(n+1)+3n)
n(n−1)(n+1) and 3n are both divisible by 3. Hence their sum is also divisible by 3. 
Therefore the whole number is divisible by 9.

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UP PGT Math Mock Test - 4 - Question 3

In a class of 100 students, 55 students have passed in Mathematics and 67 students have passed in Physics. Then the number of students who have passed in Physics only is:

Detailed Solution for UP PGT Math Mock Test - 4 - Question 3

Let A be the set of students who have passed in Mathematics, and B be the set of students who have passed in Physics.
We are given that |A| = 55 and |B| = 67, where |A| and |B| represent the number of students in sets A and B, respectively.
We are also given that there are 100 students in total. We need to find the number of students who have passed in Physics only, which means we need to find |B - A|.
First, let's find the number of students who have passed in both Mathematics and Physics, which can be represented by |A ∩ B|.
Using the principle of inclusion-exclusion, we have:
|A ∪ B| = |A| + |B| - |A ∩ B|
Since there are 100 students in total, we can say that |A ∪ B| = 100.
Now, we can find |A ∩ B|:
100 = 55 + 67 - |A ∩ B|
100 = 122 - |A ∩ B|
|A ∩ B| = 22
Now, we can find the number of students who have passed in Physics only, which is |B - A|:
|B - A| = |B| - |A ∩ B|
|B - A| = 67 - 22
|B - A| = 45
so, the correct answer is 45.

UP PGT Math Mock Test - 4 - Question 4

Let f be a differentiable function satisfying the condition for all 
, then f ' (x) is equal to

Detailed Solution for UP PGT Math Mock Test - 4 - Question 4

 replacing x and y both by 1, we get


UP PGT Math Mock Test - 4 - Question 5

The coordinates of two diagonally opposite vertices of a rectangle are (4, 3) and (-4,-3). Find the number of such rectangle(s), if the other two vertices also have integral coordinates.

(2015)

Detailed Solution for UP PGT Math Mock Test - 4 - Question 5


Other two vertices will make two right angled triangles with AB as the common hypotenuse. So they must lie on the circle with AB as the diameter and O as the centre. Radius of that circle will be 5 units.
There will be 5 such pairs in which both the coordinates are integers.
[(5, 0), (–5, 0), [(4, 3), (4, – 3)],
[(–3, 4), (3, –4)] [(–3, –4), (3, 4)] and [(0, 5), (0, –5)]

UP PGT Math Mock Test - 4 - Question 6

is equal to

Detailed Solution for UP PGT Math Mock Test - 4 - Question 6

Correct Answer :- C

Explanation : lt(x->a-) -|x-a|/x-a

= - |-a-a|/(-a-a)

= -|-2a|/(-2a)

= -2a/(-2a)

= 1

UP PGT Math Mock Test - 4 - Question 7

In a triangle ABC, cosec A (sin B cos C + cos B sin C) equals:

Detailed Solution for UP PGT Math Mock Test - 4 - Question 7

cosec A (sin B cos C + cos B sin C) = cosec A × sin(B+C)
= cosec A × sin(180 – A)
= cosec A × sin A
= cosec A × 1/cosec A
= 1

UP PGT Math Mock Test - 4 - Question 8

Probability that A speaks truth is 4/5. A coin is tossed, a reports that a head appears. The probability that actually there was head is

Detailed Solution for UP PGT Math Mock Test - 4 - Question 8

Let  E1 : Head appears
E2 : Tail appears
A : A reports that head appears

∴ Rwquired probability = 
By Bayes’ Theorem

UP PGT Math Mock Test - 4 - Question 9

If set A has 4 elements and B = {5, 6}, then the number of elements in A x B are

Detailed Solution for UP PGT Math Mock Test - 4 - Question 9

n(A) = 4
B = {5, 6}
n(B) = 2
n(A x B) = n(A)*n(B) = 4*2 = 8

UP PGT Math Mock Test - 4 - Question 10

In the following case, determine whether the given planes are parallel or perpendicular, and in case they are neither, find the angles between them. 2x – y + 3z – 1 = 0 and 2x – y + 3z + 3 = 0

Detailed Solution for UP PGT Math Mock Test - 4 - Question 10

UP PGT Math Mock Test - 4 - Question 11

Pair of tangents are drawn from every point on the line 3x + 4y = 12 on the circle x2+ y2 = 4. Their variable chord of contact always passes through a fixed point whose co-ordinates are

Detailed Solution for UP PGT Math Mock Test - 4 - Question 11

Let P(x1,y1) be a point on the line 3x + 4y = 12
Equation of variable chord of contact of P(x1,y1) w.r.t circle x2 + y2 = 4 
xx1 + yy1 − 4 = 0   ...(1)
Also 3x1 + 4y1 − 12 = 0
⇒ x1 + 4/3y1 − 4 = 0   ...(2)
Comparing (1) and (2), we get
x = 1; y = 4/3
∴ Variable chord of contact always passes through (1, 4/3)

UP PGT Math Mock Test - 4 - Question 12

Numbers of words which can be formed using all the letters of the word "AKSHI", if each word begins with vowel or terminates in vowel.


Detailed Solution for UP PGT Math Mock Test - 4 - Question 12

Consider the words starting with A.
A−−−−
Number of ways of filling the 2nd place is 4
Number of ways of filling the 3rd place is 3
Number of ways of filling the 4th place is 2
Number of ways of filling the 5th place is 1
Hence in total 4×3×2×1=24
Similar cases for the words starting with I.=24
Hence 2×24 =48
Consider the words ending with A−−−−A
Number of ways of filling the 1st place is 4
Number of ways of filling the 2nd place is 3
Number of ways of filling the 3rd place is 2
Number of ways of filling the 4th place is 1
Hence in total 24 ways.
Similarly for I- 24 ways.
Hence total number of words 4×24=96
But this includes the words which start and end with Vowels.
Hence A−−−I
Number of such words is 3!.
Similarly I−−−A.
Number of such words is 3!.
Hence total number of words beginning with or ending with Vowels is
= 96−3!−3!=96−12
= 84

UP PGT Math Mock Test - 4 - Question 13

The slope of the tangent to the curve x = a sin t, y = a  at the point ‘t’ is

Detailed Solution for UP PGT Math Mock Test - 4 - Question 13

UP PGT Math Mock Test - 4 - Question 14

The value of   is 

Detailed Solution for UP PGT Math Mock Test - 4 - Question 14

A = {(5x+2, 2x, 2x) (5x+2, x+2, 2x) (5x+2, 2x, x+2)}
= (5x+2) {(1, 2x, 2x) (1, x+2, 2x) (1, 2x, x+2)}
= (5x+2) [(1(x+2)^2 - 4x^2) - 2x(x+2 - 2x) + 2x(2x - x - 2)]
= (5x+2) [(x+2 - 2x)(x+2+2x)-2x(2 - x) + 2x(x-2)]
= (5x+2) [(2-x)(3x+2) -2x(2-x) -2x(2-x)]
= (5x+2) (2-x)[3x+2-2x-2x]
= (5x+2) (2-x)2

UP PGT Math Mock Test - 4 - Question 15

 The positive integer n so that limx→3 (xn – 3n)/(x – 3) = 108 is

Detailed Solution for UP PGT Math Mock Test - 4 - Question 15

We know that,

limx→3 (xn – 3n)/(x – 3) = n(3)n-1

Thus, n(3)n-1 = 108 {from the given}

n(3)n-1 = 4(27) = 4(33) = 4(3)4-1

Therefore, n = 4

UP PGT Math Mock Test - 4 - Question 16

 is continuous at then k = 

Detailed Solution for UP PGT Math Mock Test - 4 - Question 16


UP PGT Math Mock Test - 4 - Question 17

If three successive terms in the expansion of (1+x)a have their coefficients in the ratio 6 : 33 : 110, then n is equal to

Detailed Solution for UP PGT Math Mock Test - 4 - Question 17

(1 + x)ⁿ  = 1 + ⁿC₁x¹  + ⁿC₂x²+..............................+ⁿCnxⁿ
Three consecutive terms coefficients
ⁿCₐ  : ⁿCₐ₊₁  :  ⁿCₐ₊₂  :::  6 : 33 :  110
⇒  ⁿCₐ  = 6K  =>  n!/(a!)(n-a)!  = 6K  => n! = 6K (a!)(n-a)!
ⁿCₐ₊₁   = 33K   => n!/(a+1)!(n-a-1)! = 33K  => n!  = 33K (a+1)!(n-a-1)!
ⁿCₐ₊₂ = 110K  => n!/(a + 2)!(n-a-2)! = 110K  => n! = 110K (a + 2)!(n-a-2)!
6K (a!)(n-a)!  = 33K (a+1)!(n-a-1)!
⇒ 2  (a!)(n-a)(n-a - 1)! = 11 (a + 1)a! (n-a-1)!
⇒ 2(n-a) = 11(a + 1)
⇒ 2n - 2a = 11a + 11
⇒ 2n = 13a + 11
⇒ 13a = 2n - 11
33K (a+1)!(n-a-1)!  = 110K (a + 2)!(n-a-2)!
⇒ 3 (a+1)!(n-a-1)(n-a-2)!  = 10 (a + 2)(a + 1)!(n-a-2)!
⇒ 3 (n - a - 1) = 10(a + 2)
⇒ 3n - 3a - 3 = 10a + 20
⇒  3n = 13a + 23
⇒ 13a = 3n - 23
2n - 11 = 3n - 23
⇒ n = 12

UP PGT Math Mock Test - 4 - Question 18

Find the shortest distance between the lines :   

Detailed Solution for UP PGT Math Mock Test - 4 - Question 18

On comparing the given equations with: 
, we get: 





UP PGT Math Mock Test - 4 - Question 19

Find the value of 

Detailed Solution for UP PGT Math Mock Test - 4 - Question 19

Correct Answer :- d

Explanation:- 3(6-6) -2(6-9) +3(4-6)

= 3(0) + 6 - 6

= 0

UP PGT Math Mock Test - 4 - Question 20

If three positive real numbers a, b and c (c > a) are in Harmonic Progression, then log (a + c) + log (a – 2b + c) is equal to:

(2010)

Detailed Solution for UP PGT Math Mock Test - 4 - Question 20

Since a, b, c are in H.P.

Now log (a + c) + log (a – 2b + c)
= log [(a + c){(a + c) – 2b}]
= log [(a + c)2 – 2b (a + c)]
= log [(a + c)2 – 2 × 2ac]
= log (a – c)2 or log (c – a)2
= 2 log (a – c) or 2 log (c – a)
∴ log (a + c) + log (a – 2b + c) = 2 log (c – a)

UP PGT Math Mock Test - 4 - Question 21

then a, b, c, d are in

Detailed Solution for UP PGT Math Mock Test - 4 - Question 21

2a/2bey = 2b/2cey = 2c/2dey
= a/bey = b/cey = c/dey = k
a/b = b/c = c/d = key = k'
a=bk', b=ck',  c = dk'
b = (dk')k'
b = d(k')2
a = bk' = d(k')2 k'
= d(k')3
a,b,c,d ⇒ d(k')3, d(k')2, d(k'), d
G.P. sequence

UP PGT Math Mock Test - 4 - Question 22

8Cr = 8Cp. So

Detailed Solution for UP PGT Math Mock Test - 4 - Question 22

8Cr = 8Cp = 8C8-p     
So, either r = p or r = 8 – p
i.e. r = p or r + p = 8

UP PGT Math Mock Test - 4 - Question 23

The sum to n term of the series 1(1!) + 2(2!) + 3(3!) + ....

Detailed Solution for UP PGT Math Mock Test - 4 - Question 23

UP PGT Math Mock Test - 4 - Question 24

The number of terms in the expansion of (x + y + z)n is 

Detailed Solution for UP PGT Math Mock Test - 4 - Question 24

n+r-1Cr-1

UP PGT Math Mock Test - 4 - Question 25

If |x| < 1 then 

Detailed Solution for UP PGT Math Mock Test - 4 - Question 25


UP PGT Math Mock Test - 4 - Question 26

Let g (x) be continuous in a neighbourhood of ‘a’ and g (a) ≠ 0. Let f be a function such that f ‘ (x) = g(x) (x−a)2 , then

Detailed Solution for UP PGT Math Mock Test - 4 - Question 26

Since g is continuous at a , therefore , if g (a) > 0 , then there is a nhd.of a, say (a-e , a+ e) in which g (x) is positive .This means that f ‘ (x)>0 in this nhd of a and hence f (x) is increasing at a.

UP PGT Math Mock Test - 4 - Question 27

If S is the sum of infinity of a G.P. whose first term is `a', then the sum of the first n terms is

Detailed Solution for UP PGT Math Mock Test - 4 - Question 27

Given that first term =a
S= sum to infinity of a G.P= a/(1−r)
r=1−a/S
Sn=a(1−rn)/(1-r)
Sn=S(1−rn)
Sn=S[1−(1−a/S)n]

UP PGT Math Mock Test - 4 - Question 28

The domain and range of y = sinx is

Detailed Solution for UP PGT Math Mock Test - 4 - Question 28

The sine function has no domain restrictions. That means that the domain is (−∞,+∞)
However, the range of a since function is restricted as such : [−1,+1].

UP PGT Math Mock Test - 4 - Question 29

If the letters of the word "VARUN" are written in all possible ways and then are arranged as in a dictionary, then rank of the word VARUN is

Detailed Solution for UP PGT Math Mock Test - 4 - Question 29

Number of words beginning with A = 4! = 4 × 3 × 2 = 24
Number of words beginning with N = 4! = 4 × 3 × 2 = 24
Number of words beginning with R = 4! = 4 × 3 × 2 = 24
Number of words beginning with U = 4! = 4 × 3 × 2 = 24
So, in total 96 words will be formed while beginning with letter A, N, R and U.
Now, 97th word according to dictionary order will be VANRU
Now, 98th word according to dictionary order will be VANUR
Now, 99th word according to dictionary order will be VARNU
Finally, 100th word according to dictionary order will be VARUN.
Hence, option (c) is the correct answer.

UP PGT Math Mock Test - 4 - Question 30

Find the length of arc of the circle whose diameter is 14 m and which subtends an angle of 1° at the centre.

Detailed Solution for UP PGT Math Mock Test - 4 - Question 30

 r =7 m, θ = 1°
Length subtended by Arc = (2πr/360o)×θ
= (2×22×7×1)/(7×360)
​= 0.12m

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