UPSC Exam  >  UPSC Tests  >  UPSC Prelims Paper 2 CSAT - Quant, Verbal & Decision Making  >  Test: Quadrilaterals- 2 - UPSC MCQ

Test: Quadrilaterals- 2 - UPSC MCQ


Test Description

25 Questions MCQ Test UPSC Prelims Paper 2 CSAT - Quant, Verbal & Decision Making - Test: Quadrilaterals- 2

Test: Quadrilaterals- 2 for UPSC 2024 is part of UPSC Prelims Paper 2 CSAT - Quant, Verbal & Decision Making preparation. The Test: Quadrilaterals- 2 questions and answers have been prepared according to the UPSC exam syllabus.The Test: Quadrilaterals- 2 MCQs are made for UPSC 2024 Exam. Find important definitions, questions, notes, meanings, examples, exercises, MCQs and online tests for Test: Quadrilaterals- 2 below.
Solutions of Test: Quadrilaterals- 2 questions in English are available as part of our UPSC Prelims Paper 2 CSAT - Quant, Verbal & Decision Making for UPSC & Test: Quadrilaterals- 2 solutions in Hindi for UPSC Prelims Paper 2 CSAT - Quant, Verbal & Decision Making course. Download more important topics, notes, lectures and mock test series for UPSC Exam by signing up for free. Attempt Test: Quadrilaterals- 2 | 25 questions in 25 minutes | Mock test for UPSC preparation | Free important questions MCQ to study UPSC Prelims Paper 2 CSAT - Quant, Verbal & Decision Making for UPSC Exam | Download free PDF with solutions
Test: Quadrilaterals- 2 - Question 1

Two parallelogram stand on equal bases and between the same parallels. The ratio of their areas is

Detailed Solution for Test: Quadrilaterals- 2 - Question 1

Consider P1 as the area of first parallelogram and P2 as the area of second parallelogram

We know that

Area of parallelogram = b × h

P1 = b1 × h1

P2 = b2 × h2

From the question, b1 = b2

As the distance between two parallel lines is equal

h1 = h2

P1 = b × h …. (1)

P2 = b × h …. (2)

From equation (1) and (2)

P1 = P2

So we get

P1 : P2 = 1 : 1

Therefore, the ratio of their areas is 1 : 1.

Test: Quadrilaterals- 2 - Question 2

In quadrilateral ABCD, if ∠A = 60 and ∠B : ∠C : ∠D = 2:3:7, then ∠D is :

Detailed Solution for Test: Quadrilaterals- 2 - Question 2

Given in quadrilateral ABCD:

  • ∠A = 60°
  • Ratio ∠B : ∠C : ∠D = 2:3:7

We let:

  • ∠B = 2x
  • ∠C = 3x
  • ∠D = 7x

Since the sum of the angles in a quadrilateral is 360°, we have:

∠A + ∠B + ∠C + ∠D = 360°
60° + 2x + 3x + 7x = 360°
12x + 60° = 360°
12x = 300°
x = 25°

Substituting back to find ∠D:

∠D = 7x = 7 × 25° = 175°

Thus, ∠D is 175°.

1 Crore+ students have signed up on EduRev. Have you? Download the App
Test: Quadrilaterals- 2 - Question 3

D and E are the mid-points of the sides AB and AC res. Of △ABC. DE is produced to F. To prove that CF is equal and parallel to DA, we need an additional information which is:

Detailed Solution for Test: Quadrilaterals- 2 - Question 3

D and E are the mid-points of the sides AB and AC respectively of ∆ABC. DE is produced to F. To prove that CF is equal and parallel to DA, we need an additional information which is DE = EF.

Let us assume that, DE = EF

AE = CE  ......[∵ E is mid-point of AC]

DE = EF  .....[Assumed]

∠AED = ∠FEC  ......[Vertically opposite angles]

∴ By SAS, ∆AED ≅ ∆FEC

∴ By CPCT, AD = CF and ∠ADE = ∠CFE

∵ Alternate interior angles are equal

∴ AD ∥ CF

That proves our assumption was correct.

Test: Quadrilaterals- 2 - Question 4

P, Q, R are the mid- points of AB, BC, AC res, If AB = 10cm, BC = 8cm, AC = 12cm, Find the perimeter of △PQR.

Detailed Solution for Test: Quadrilaterals- 2 - Question 4

Given: P, Q, and R are the midpoints of sides AB, BC, and AC of triangle ABC, respectively.

We know that:

  • AB = 10 cm
  • BC = 8 cm
  • AC = 12 cm

Step-by-Step Solution

  1. Calculate the Perimeter of ΔABC:

    The perimeter of ΔABC is given by the sum of its sides:

    AB + BC + AC = 10 cm + 8 cm + 12 cm = 30 cm

  2. Determine the Perimeter of ΔPQR:

    Since P, Q, and R are midpoints, ΔPQR is similar to ΔABC with a ratio of 1:2.

    Therefore, the perimeter of ΔPQR is half of the perimeter of ΔABC:

    Perimeter of ΔPQR = (1/2) × 30 = 15 cm

The perimeter of ΔPQR is 15 cm.

Correct option: c) 15 cm

Test: Quadrilaterals- 2 - Question 5

In Triangle ABC which is right angled at B. Given that AB = 9cm, AC = 15cm and D, E are the mid-points of the sides AB and AC res. Find the length of BC?

Detailed Solution for Test: Quadrilaterals- 2 - Question 5

In right  ΔABC, ∠= 90°

By using Pythagoras theorem

In ΔABC

and are midpoints of  AB and AC

Test: Quadrilaterals- 2 - Question 6

Three Statements are given below:
(I) In a, Parallelogram the angle bisectors of 2 adjacent angles enclose a right angle.
(II) The angle bisector of a Parallelogram form a Rectangle.
(III) The Triangle formed by joining the mid-points of the sides of an isosceles triangle is not necessarily an isosceles triangle. Which is True?

Detailed Solution for Test: Quadrilaterals- 2 - Question 6

Given 2 statements.
I. In a parallelogram, the angle bisectors of two adjacent angles enclose a right angle.
II. The angle bisectors of a parallelogram form a rectangle.
III. The triangle formed by joining the mid-points of the sides of an isosceles triangle is not necessarily an isosceles triangle.
As, in a parallelogram the angle bisectors intersect and form a right-angle.
Hence, statement I is true.
The angle bisector forms a rectangle as it also intersects at the right-angle.
The statement II is also correct.
Hence, option 2 is correct.

Test: Quadrilaterals- 2 - Question 7

If APB and CQD are 2 parallel lines, then the bisectors of the angles APQ, BPQ, CQP and PQD form, square only if

Detailed Solution for Test: Quadrilaterals- 2 - Question 7

Line APB is parallel to CQD

when we join PQ it will be transversal

then angleBPQ = angleCQP    (alternate angles)

angleAPQ = anglePQD   

when we will draw bisectors 

then the figure formed will have opposite angles equal

which means that it is a parallelogram

Test: Quadrilaterals- 2 - Question 8

If bisectors of ∠A and ∠B of a quadrilateral ABCD intersect each other at P, of ∠B and ∠C at Q, of ∠C and ∠D at R and of ∠D and ∠A at S, then PQRS is a

Detailed Solution for Test: Quadrilaterals- 2 - Question 8

To show: ∠PSR + ∠PQR = 180°
∠SPQ + ∠SRQ = 180°

In △DSA,

∠DAS + ∠ADS + ∠DSA = 180° (angle sum property)

+ ∠ SA = 180° (since RD and AP are bisectors of ∠D and ∠A)

∠DSA = 180°
∠PSR = 180°−

(∵ ∠DSA = ∠PSR are vertically opposite angles)

Similarly,

∠PQR = 180°− 


Adding (i) and (ii), we get, ∠PSR + ∠PQR = 180°
=360° − 1/2 ​× (∠A + ∠B + ∠C + ∠D)
 

=360°− 1/2​ × 360° = 180° ∴ ∠PSR + ∠PQR = 180°

In quadrilateral PQRS,

∠SPQ + ∠SRQ + ∠PSR + ∠PQR = 360°
=> ∠SPQ + ∠SRQ + 180° = 360°
=> ∠SPQ + ∠SRQ = 180°

Hence, showed that opposite angles of PQRS are supplementary.

Test: Quadrilaterals- 2 - Question 9

The Diagonals AC and BD of a Parallelogram ABCD intersect each other at the point O such that ∠DAC = 30 and ∠AOB = 70. Then, ∠DBC?

Detailed Solution for Test: Quadrilaterals- 2 - Question 9

∠ OAD = ​∠ OCB = 30
(Alternate interior angles)
∠ AOB + ∠ BOC = 180
(Linear pair of angles)
∴ ∠ BOC =180 − 70 = 110
(∠ AOB = 70)
In ∆ BOC, we have:
∠ OBC = 180 − (110 + 30) = 40
∴ ​∠ DBC = 40

Test: Quadrilaterals- 2 - Question 10

In Parallelogram ABCD, bisectors of angles A and B intersect each other at O. The measure of ∠AOB is

Detailed Solution for Test: Quadrilaterals- 2 - Question 10

In a parallelogram ABCD, the bisectors of angles A and B intersect at point O. The following explanation details the calculation of the measure of ∠AOB.

Parallelogram Properties

In parallelogram ABCD, angles A and B are supplementary, which means:

∠A + ∠B = 180°

Angle Bisectors

The bisectors of angles A and B intersect at O, forming angles:

∠OAB = ½∠A and ∠OBA = ½∠B

Forming ∠AOB

Angle ∠AOB can be calculated as:

∠AOB = 360° - (∠OAB + ∠OBA + ∠AOB'), where ∠AOB' is the angle opposite ∠AOB within triangle AOB.

Sum in Triangle AOB

In triangle AOB, the sum of angles is:

∠OAB + ∠OBA + ∠AOB' = 180°

Using Supplementary Angles

Given that ∠A and ∠B are supplementary:

∠AOB' = 180° - (½∠A + ½∠B) = 180° - ½ × 180° = 90°

Calculating ∠AOB

Since ∠AOB and ∠AOB' form a straight line at point O:

∠AOB = 360° - 180° - 90° = 90°

Therefore, the measure of ∠AOB is 90°.

Test: Quadrilaterals- 2 - Question 11

Three statements are given below:
(I) In a Rectangle ABCD, the diagonals AC bisects ∠A as well as ∠C.
(II) In a Square ABCD, the diagonals AC bisects ∠A as well as ∠C.
(III) In rhombus ABCD, the diagonals AC bisects ∠A as well as ∠C.
Which is True?

Detailed Solution for Test: Quadrilaterals- 2 - Question 11

Clearly, statements II and III are true. Statement I is false, as diagonal of a rectangle does not bisect ∠A and ∠C (∴ adjacent sides are not equal).

Test: Quadrilaterals- 2 - Question 12

D and E are the mid-points of the sides AB and AC of △ABC and O is any point on the side BC, O is joined to A. If P and Q are the mid-points of OB and OC res, Then DEQP is

Detailed Solution for Test: Quadrilaterals- 2 - Question 12

In ΔABC, D and E are the mid-points of sides AB and AC, respectively.

By mid-point theorem,

DE || BC  .....(i)

⇒ DE = PO + OQ

⇒ DE = PQ

Now, In ΔAOC, Q and E are the midpoints of OC and AC respectively.

From equations (iii) and (iv),

EQ || PD and EQ = PD

From equations (i) and (ii),

 DE || BC (or DE || PQ) and DE = PQ

Hence, DEQP is a parallelogram.

Test: Quadrilaterals- 2 - Question 13

Given Rectangle ABCD and P, Q, R and S are the mid-points of the sides AB, BC, CD and DA res. If length of a diagonal of Rectangle is 8cm, then the quadrilateral PQRS is a

Detailed Solution for Test: Quadrilaterals- 2 - Question 13

We will use the mid-point theorem here. It states that the line segment joining the mid-points of any two sides of the triangle is parallel to the third side and is half of it. 

Let us join AC and BD. In △ABC,

P and Q are the mid-points of AB and BC respectively.

∴ PQ || AC and PQ = 1/2 AC (Mid-point theorem) ... (1)

Similarly, in △ADC,

SR || AC and SR = 1/2 AC (Mid-point theorem) ... (2)

Clearly, PQ || SR and PQ = SR [From equation (1) and (2)]

Since in quadrilateral PQRS, one pair of opposite sides are equal and parallel to each other, it is a parallelogram.

∴ PS || QR and PS = QR (Opposite sides of the parallelogram) ... (3)

In △BCD, Q and R are the mid-points of side BC and CD respectively.

∴ QR || BD and QR = 1/2 BD (Mid-point theorem) ... (4)

However, the diagonals of a rectangle are equal.

∴ AC = BD ... (5)

Thus, QR = 1/2 AC

Also, in △BAD

PS || BD and PS = 1/2 BD

Thus, QR = PS .... (6)

By using Equations (1), (2), (3), (4), and (5), we obtain

PQ = QR = SR = PS

Therefore, PQRS is a rhombus.

Test: Quadrilaterals- 2 - Question 14

In the given figure, ABCD is a Rhombus. Then, 

Detailed Solution for Test: Quadrilaterals- 2 - Question 14

Given: A rhombus ABCD
To Prove: 4AB² = AC² + BD²
Proof: The diagonals of a rhombus bisect each other at right angles.

Test: Quadrilaterals- 2 - Question 15

D and E are the mid-points of the sides AB and AC. Of △ABC. If BC = 5.6cm, find DE.

Detailed Solution for Test: Quadrilaterals- 2 - Question 15

In the problem, points D and E are the midpoints of sides AB and AC respectively in triangle △ABC, and you need to find the length of segment DE given that BC = 5.6 cm.

Since D and E are midpoints, segment DE is a midsegment of the triangle. A midsegment of a triangle connects the midpoints of two sides of the triangle and is parallel to the third side. Importantly, the length of a midsegment is half the length of the side it is parallel to.

In this case, DE is parallel to side BC, and hence its length is half the length of BC. Therefore:

DE = 1/2 * BC = 1/2 * 5.6 cm = 2.8 cm

This matches the given answer D: 2.8 cm.

Test: Quadrilaterals- 2 - Question 16

In a triangle P, Q and R are the mid-points of the sides BC, CA and AB res. If AC = 21cm, BC = 29cm and AB = 30cm, find the perimeter of the quadrilateral ARPQ?

Detailed Solution for Test: Quadrilaterals- 2 - Question 16

P, Q, R are the mid-points of sides BC, CA and AB respectively.
AC = 21 cm, BC = 29 cm and AB = 30°
.: P, Q, R and the midpoints of sides BC, CA and AB respectively.
.: PQ || AB and PQ = ½AB

PQ = ½ × 30° = 15cm
Similarly, QR || BC and
QR = ½ × BC = ½ × 29 = 14.5cm
and RP || AC and RP = ½AC
= ½ × 21 = 10.5cm
Now perimeter of quad. ARPQ,
= AR+RP+PQ+AQ
= ½AB + ½AC + ½AB + ½AC
= AB + AC = 30 + 21 = 51 cm

Test: Quadrilaterals- 2 - Question 17

The bisectors of the angles of a Parallelogram enclose a

Detailed Solution for Test: Quadrilaterals- 2 - Question 17

We have ABCD, a parallelogram given below:

Therefore, we have AB || BC

Now,  AD || BC and transversal AB intersects them at A and B respectively. Therefore,

Sum of consecutive interior angle is supplementary. That is;
∠A + ∠B = 180°

We have AR and BR as bisectors of ∠A and ∠B  respectively.

 ∠RAB +∠RBA = 90° …… (i)

Now, in ΔABR, by angle sum property of a triangle, we get:

∠RAB + ∠RBA +∠ARB = 180° 

From equation (i), we get:

90° + ∠ARB = 180°

∠ARB = 90° 

Similarly, we can prove that ∠DPC = 90° .

Now, AB || DC and transversal ADintersects them at A and D respectively. Therefore,

Sum of consecutive interior angle is supplementary. That is;

∠A + ∠D = 180°

We have AR and DP as bisectors of ∠A and ∠D  respectively.

 ∠DAR + ∠ADP = 90° …… (ii)

Now, in ΔADR, by angle sum property of a triangle, we get:

∠DAR + ∠ADP + ∠AQD = 180° 

From equation (i), we get:

 90° +∠AQD = 180°

∠AQD = 90° 

We know that ∠AQD and ∠PQR are vertically opposite angles, thus,

∠PQR = 90°

Similarly, we can prove that ∠PSR = 90° .

Therefore, PQRS is a rectangle.

Hence, the correct choice is (d).

Test: Quadrilaterals- 2 - Question 18

Opposite angles of a Quadrilateral ABCD are equal. If AB = 4cm, find the length of CD.

Detailed Solution for Test: Quadrilaterals- 2 - Question 18

Consider ABCD as a quadrilateral

It is given that the opposite angles are equal hence the given quadrilateral is a parallelogram.

Here the opposite side of AB is CD

If AB = 4 cm then CD = 4 cm

Therefore, CD = 4 cm.

Test: Quadrilaterals- 2 - Question 19

In a Trapezium ABCD, if AB ║ CD, then (AC2+ BD2) = ?

Detailed Solution for Test: Quadrilaterals- 2 - Question 19

Draw perpendicular from D and C on AB which meets AB at E and F, respectively.
∴ DEFC is a parallelogram and EF = CD .
In Δ ABC, ∠B is acute.
∴ AC² = BC² + AB² - 2AB.AE
In Δ ABD, ∠A is acute.
∴ BD² = AD² + AB² - 2AB.AF

∴ AC² + BD² = (BC² + AD²) + (AB² + AB²) - 2AB(AE + BF)
= (BC² + AD²) + 2AB(AB - AE - BF)
[∵ AB = AE + EF + FB and AB - AE = BE]
= (BC² + AD²) + 2AB(BE - BF)
= (BC² + AD²) + 2AB.EF
∴ AC² + BD² = (BC² + AD²) + 2AB.CD

Test: Quadrilaterals- 2 - Question 20

In quadrilateral ABCD, ∠B = 90, ∠C−∠D = 60 and ∠A−∠C−∠D = 10. Find ∠A, ∠C and ∠D.

Detailed Solution for Test: Quadrilaterals- 2 - Question 20

∠B = 90°
∠C - ∠D = 60°
∠A - ∠C - ∠D = 10°.......(1)
∠A + ∠C + ∠D = 360° - 90° = 270° (from Angle sum property of quadrilateral)

On adding,
∠A + ∠C + ∠D = 270°
∠A - ∠C - ∠D = 10°

2∠A = 280°
∠A = 140°

=> from (1)
∠A = 140°, ∠A - (∠C + ∠D) = 10°
140° - (∠C + ∠D) = 10°
∠C + ∠D = 130° ...........(2)

If ∠C - ∠D = 60° & ∠C + ∠D = 130°
2∠C = 190°, ∠C = 95°

∠D = 130° - 95° - from (2)
∠D = 35°

So, the correct answer is option (a).

Test: Quadrilaterals- 2 - Question 21

If a Quadrilateral ABCD,∠A = 90 and AB = BC = CD = DA, Then ABCD is a

Detailed Solution for Test: Quadrilaterals- 2 - Question 21

Step 1: Given that angle A = 90 degrees, we know that ABCD has one right angle.

Step 2: Since AB = BC = CD = DA, all sides of quadrilateral ABCD are equal in length. Let's denote the length of each side as 's'.

Step 3: Now, we have a quadrilateral with one right angle and all sides equal. This means that ABCD is an equilateral quadrilateral.

Step 4: In an equilateral quadrilateral with one right angle, the other angles must also be right angles. Therefore, angle B = angle C = angle D = 90 degrees.

Step 5: Since all angles are 90 degrees and all sides are equal, quadrilateral ABCD is a square.

Quadrilateral ABCD is a square.

Test: Quadrilaterals- 2 - Question 22

Rhombus is a quadrilateral

Detailed Solution for Test: Quadrilaterals- 2 - Question 22

This is because in a rhombus, the diagonals always bisect each other at right angles (90 degrees). While the diagonals do bisect each other (option C) and also bisect the opposite angles (option D), the defining characteristic in the context of a rhombus's diagonal properties is that they are perpendicular.

So, if the question specifically asks about the nature of the diagonals' intersection, option A is the most accurate. Option D, "in which diagonals bisect opposite angles," is also true but is not specifically about the angle at which they bisect each other.

Test: Quadrilaterals- 2 - Question 23

In △ABC, EF is the line segment joining the mid-points of the sides AB and AC. BC = 7.2cm, Find EF.

Detailed Solution for Test: Quadrilaterals- 2 - Question 23

In triangle △ABC, if EF is the line segment joining the midpoints of sides AB and AC, then EF is a midsegment of the triangle. According to the triangle midsegment theorem, a midsegment in a triangle is parallel to the third side and its length is half the length of that side.

Since BC = 7.2 cm, the length of EF, which is a midsegment, would be half of BC. Therefore:

EF = 1/2 * BC = 1/2 * 7.2 cm = 3.6 cm

So, the correct answer is A: 3.6cm.

Test: Quadrilaterals- 2 - Question 24

In the figure, ABCD is a rhombus, whose diagonals meet at 0. Find the values of x and y. 

Detailed Solution for Test: Quadrilaterals- 2 - Question 24

Since diagonals of a rhombus bisect each other at right angle .

∴ In △AOB , we have 

∠OAB + ∠x + 90° = 180° 

∠x = 180° -  90° - 35° [∵ ∠OAB = 35°]

= 55° 

Also, ∠DAO = ∠BAO = 35°  

∴ ∠y + ∠DAO + ∠BAO + ∠x = 180°  

⇒ ∠y + 35° + 35° + 55° =  180°  

⇒ ∠y = 180° - 125° = 55°

Hence the values of x and y are x =  55°, y =  55°.    

Test: Quadrilaterals- 2 - Question 25

The diagonals AC and BD of a parallelogram ABCD intersect each other at the point O. If ∠DAC = 32 and ∠AOB = 70 then, ∠DBC is equal to

Detailed Solution for Test: Quadrilaterals- 2 - Question 25

Given,

ABCD is a parallelogram

AC and BD are the diagonals

AD || BC

∠DAC = ∠ACB [Alternate angle]

∠ACB = 32º

We know that

∠AOB + ∠BOC = 180º [Straight line]

Substituting the values

70º + ∠BOC = 180º

∠BOC = 110º

In Δ BOC,

∠OBC + ∠BOC + ∠OCB = 180º

Substituting the values

∠OBC + 110º + 32º = 180º

∠OBC = 38º

∠DBC = 38º

Therefore, ∠DBC is equal to 38º.

67 videos|50 docs|151 tests
Information about Test: Quadrilaterals- 2 Page
In this test you can find the Exam questions for Test: Quadrilaterals- 2 solved & explained in the simplest way possible. Besides giving Questions and answers for Test: Quadrilaterals- 2, EduRev gives you an ample number of Online tests for practice

Top Courses for UPSC

Download as PDF

Top Courses for UPSC