- INTRODUCTION
- TYPES OF TRIANGLES
- ACUTE TRIANGLE
- RIGHT TRIANGLE
- OBTUSE TRIANGLE
- EQUILATERAL TRIANGLE
- ISOSCELES TRIANGLE
- SCALENE TRIANGLE
- PERIMETER AND AREA OF TRIANGLE
- SIMILARITY AND CONGRUENCY OF TRIANGLES
- CENTRES, RADIUS AND CIRCLES IN TRIANGLES
- THEOREMS RELATED TO TRIANGLES
TRIANGLES
A triangle is a closed figure bound by three non-parallel coplanar straight lines. It has three non-collinear vertices (A, B and C for example) which are the intersection points of these three lines (AB, BC and CA) known as the sides of the triangle.
In the given ΔABC, the lengths of the sides
opposite to the angles A, B and C are by convention referred to as a,
b and c. 
ACD
is one of the exterior angles of the triangle. Every triangle has six exterior
angles, two at every vertex.
Properties of triangles:
- Sum of the three interior angles is 180
.
mA
+ mB
+ mC
= 180
- Measure of exterior angle is equal to the sum of the measures of two remote interior angles.
mACD
= mA
+ mB
- Sum of the three exterior angles is 360.
- Sum of the lengths of any two sides is more than that of the third side.
a + b > c
b + c > a
c + a > b
- Difference of the lengths of any two sides is less than the third side.
|a – b| < c
|b – c| < a
|c – a| < b
- Side opposite to the greatest angle is the longest, and side opposite to the smallest angle is the shortest.
If
A
> B
> C
then a > b > c
- In a triangle at least two angles are acute, i.e. less than
90.
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What is the number of distinct triangles with integral valued sides and perimeter 14? [CAT 2000] (1) 6(2) 5(3) 4 (4) 3
Solution: Let the sides of the triangle be a, b and c then, a + b > c. a + b + c = 14 Possible sets of sides are (4, 4, 6), (5, 5, 4),(6, 5, 3) and (6, 6, 2).
Hence, option 3. |
A line joining the midpoint of a side with the opposite vertex is known as median for that side.
A perpendicular drawn from a vertex to the opposite side is known as altitude for that side.
A triangle has three medians. All the three medians intersect each other at a common point. This point of intersection is known as the centroid, which divides the three medians in the ratio of 2 : 1 (2 towards the vertex and 1 towards the side).
A triangle has three altitudes. All the three altitudes intersect each other at a common point. This point of intersection is known as the orthocentre.
In the ΔABC above, mBOC
= 180
mA
A triangle, in which all the three angles are acute, is known as an acute angled triangle or simply acute triangle.
A triangle, in which one angle is a right angle, is known as a right angled triangle or simply right triangle.
In a right triangle, ΔABC, AC2 = AB2 + BC2
(This is known as the Pythagoras Theorem)
A Pythagorean triplet is a set of three positive whole numbers a, b, c that are the lengths of the sides of a right triangle.
Some Pythagorean triplets:
3, 4, 55, 12, 137, 24, 25
8, 15, 179, 40, 41
11, 60, 6112, 35, 3716, 63, 65
20, 21, 2928, 45, 53
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A ladder leans against a vertical wall. The top of the ladder is 8 m above the ground. When the bottom of the ladder is moved 2 m farther away from the wall, the top of the ladder rests against the foot of the wall. What is the length of the ladder? [CAT 2001] (1) 10 m(2) 15 m(3) 20 m(4) 17 m Solution: Let the foot of the ladder be x metres away from the foot of the wall. Now, the length of the ladder will be = x + 2
On solving, we get, x = 15
Hence, option 4. |
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A ladder 25 metres long is placed against a wall with its foot 7 metres away from the foot of the wall. How far should the foot be drawn out so that the top of the ladder may come down by half the distance of the total distance if the foot is drawn out? [IIFT 2008] (1) 6 metres(2) 8 metres (3) 8.75 metres(4) None of the above Solution: The initial position of the ladder is as shown below:
By Pythagoras theorem,
The final position would be:
Hence, option 4. |
A triangle, in which one angle is obtuse, is known as an obtuse angled triangle or simply obtuse triangle.
REMEMBER
Sides of ΔABC are a, b and c such that a, b < c ;
- if c2 = a2 + b2 then ΔABC is a right triangle
- if c2 < a2 + b2 then ΔABC is an acute triangle
- if c2 > a2 + b2 then ΔABC is an obtuse triangle.
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Consider obtuse-angled triangles with sides 8 cm, 15 cm and x cm. If x is an integer, then how many such triangles exist? [CAT 2008] (1)5(2) 21(3) 10(4)15(5) 14 Solution: We know that for an obtuse triangle of sides a, b and c (where c is the largest side), a2 + b2 < c2 We also know that for a triangle, a + b > c These present us with two limiting cases. Let 8 cm and 15 cm be the shorter sides. The value of the largest side (x) must be greater than
The possible integer values of x are 18, 19, 20, 21 and 22 cm. We cannot consider values from 23 onwards because 8 + 15 = 23 and this violates the second condition. Now, consider the case where 15 cm is the measure of the largest side. The value of the remaining side (x) must be less than
The possible integer values are 12, 11, 10, 9 and 8 cm. We cannot consider values less than 8 because 7 + 8 = 15 and this violates the second condition. Thus, we have 10 possible values for x. Hence, option 3. |
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How many differently shaped triangles exist in which no two sides are of the same length, each side is of integral unit length and the perimeter of the triangle is less than 14 units? [XAT 2009] (1) 3(2) 4 (3) 5 (4) 6(5) None of the above. Solution: Let there be a triangle with sides a, b and c, where c is the largest side. It is given that the perimeter must be less than 14.
Now, sum of two sides is greater than the third side in any triangle.
Hence, we take values of c from 1 to 6, and check if we can find a and b that satisfies (i). These values are tabulated below:
Hence, option 3. |
Here, we will discuss some formulae:
- In an acute triangle, ΔABC
AC2 = AB2 +
BC2 – 2 
BC
BD;
where AD is the perpendicular from the vertex A to the side BC.
Explanation:
In ∆ADB, AB2 = AD2 + BD2 (by Pythagoras theorem)
Hence, AD2 = AB2 – BD2…(i)
Similarly, in ΔADC, AC2 = AD2 + DC2 (by Pythagoras theorem)
Hence, AD2 = AC2 – DC2…(ii)
From (i) and (ii) we have,
AC2 – DC2 = AB2 – BD2
AC2 = AB2 + DC2 – BD2…(iii)
Now, DC2 = (BC – BD)2
= BC2 – (2
BC
BD)+ BD2
Putting this value in equation (iii) we have,
AC2 = AB2 + BC2 – (2
BC
BD) + BD2 – BD2
Hence, AC2 = AB2 +
BC2 – 2
BC
BD
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ΔPQR is an acute triangle. PS PQ = 10 cm, PR = 17 cm and QS = 6 cm.
Solution: As seen above, in ΔPQR, PS
Let QR = x
Solving this, we get, x = 21 Thus, QR = 21 cm |
QR.
Find QR, if
- In an obtuse triangle, ΔABC
AC2 = AB2 + BC2
+ 2
BC
BD;
where AD is the perpendicular drawn from vertex A to extended side BC.
Explanation:
Using Pythagoras theorem in right triangles ΔADB and ΔADC, we get
AD2 = AC2 – DC2 = AB2 – BD2
AC2 = AB2 + DC2 – BD2
Now , DC2 = (BD + BC)2
= BD2 + (2
BC
BD)+ BC2
AC2 = AB2 – BD2 + BD2 + (2
BC
BD) + BC2
AC2 = AB2 + BC2 + 2
BC
BD
A triangle, in which all the three sides are
equal in length, is known as an equilateral triangle. All the three
angles of an equilateral triangle are equal to 60.
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If a, b, c are the sides of a triangle, and a2 + b2 + c2 = bc + ca + ab, then the triangle is [CAT 2000]
(1) equilateral(2) isosceles (3) right angled(4) obtuse angled
Solution: a, b, c are the sides of a triangle. It is given that a2+ b2 + c2 = bc + ca + ab This is possible only if a = b = c i.e., the triangle is equilateral. Hence, option 1. |
A triangle, in which two sides are equal in length, is known as an isosceles triangle. In an isosceles triangle, two angles opposite to equal sides are equal.
In the given figure, sides AB and AC are
equal and thus mB
= mC.
Conventionally, point A is known as the vertex and side BC as the base.
REMEMBER
- An equilateral triangle is also an isosceles triangle, but an isosceles triangle is not necessarily an equilateral triangle.
A triangle, in which all the three sides are of different length, is known as a scalene triangle. In a scalene triangle, all the three angles are of different measure.
The sum of the lengths of the three sides of a triangle is known as the perimeter. So for a triangle with sides a, b and c;
Perimeter (P) = a + b + c
Case 1: Lengths of the sides (a, b and c) are given.
Case 2: Length of the base and altitude is given.
where b = base and h = height or altitude to the base.
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Find the area of a triangle with sides 3, 4 and 5 cm. Solution:
Alternatively, Since the sides of the given triangle make a Pythagorean triplet, it is a right triangle. Consider the sides 3 and 4 as base and height respectively, then the area can be calculated as,
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Case 3: Lengths of two sides (a
and b) and the included angle (
)
is given.
In this case, altitude (h) = b
sin
Here we will discuss some special cases:
- Equilateral triangle
where a = length of any side.
In an equilateral triangle, the perpendicular bisector, median, altitude and angle bisector are the same.
- Isosceles triangle
Here,
Using Pythagoras theorem, in ΔAOB
AB2 = BO2 + AO2
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Find the area of a triangle with two sides measuring
4 cm each and the angle between them equal to 60 Solution:
Alternatively, Since the given triangle is isosceles, hence its two
angles are equal. In this case, these two angles will be 60
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Euclid has a triangle in mind, Its longest side has length 20 and another of its sides has length 10. Its area is 80. What is the exact length of its third side? [CAT 2001] (1) (3)  (4)
Solution: Let the perpendicular on the longest side from the other vertices be h.
The perpendicular has two triangles on its two sides. On its left, there is one with a hypotenuse of 10. If the two sides are 10 and 8, the third one must be 6.
The two sides being 8 and 14, the hypotenuse must be
Hence, option 1. Alternatively, Let the third side of the triangle be x.
Area of Triangle = 
Area of Triangle = 80 =
Using options, we get, x = 
(900 Hence, option 1. |
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The internal bisector of an angle A in a triangle
ABC meets the side BC at point D. AB = 4, AC = 3 and [CAT 2002]
Solution:
In a triangle with sides a and b and
the included angle
Hence, option 1. |
REMEMBER
- Equilateral triangle has the maximum area, out of all the triangles with given perimeter.
- Equilateral triangle has the minimum perimeter, out of all the triangles with given area.
Two triangles are said to be similar
if their corresponding angles are equal. The notation used for similarity is
“
”.
In the above figure, ΔABC is similar to ΔDEF
(i.e. ΔABC
ΔDEF) because mA
= mD,
mB
= mE
and mC
= mF
1.A–A–A TEST
If in two triangles all the corresponding angles are equal, then the two triangles are similar.
Corollary: If in two triangles two corresponding angles are equal, then the two triangles are similar.
This is due to the fact that when two pairs of angles are equal then the third pair will always be equal.
2.S–A–S test
If an angle of a triangle is equal to an angle of the other triangle and the corresponding sides including this angle are in the same proportion, then the triangles are similar.
In the given triangles, AC : DF = BC : EF and
mC
= mF.
Hence, ΔABC
ΔDEF.
3.S–S–S test
If all the corresponding sides of two triangles are in the same proportion, then the triangles are similar.
where r is known as the ratio of linear measurement.
For similar triangles, the ratio of any corresponding sides will be equal to the ratio of linear measurement. Hence, the ratio of the perimeters, ratio of the corresponding altitudes, ratio of the corresponding medians etc. will be equal to the ratio of linear measurement.
Also, ratio of the areas of these triangles will be equal to the square of ratio of the linear measurement.
REMEMBER
- All equilateral triangles are similar to each other.
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The area of a triangle with sides x, y and z is 10 square units. Find the area of another triangle with sides 3x, 3y and 3z units. Solution: Since the ratio of the sides of the two triangles is equal, they are similar triangles. Hence, the ratio of areas will be equal to the square of the ratio of the linear measurement. Since the sides of the second triangle are three times the corresponding sides of the first triangle, the area of the second triangle will be nine times (32) the area of the first triangle, i.e. 9 |
In case of a right triangle (ΔABC for example) if we draw a perpendicular (BD) from the vertex B containing the right angle to the hypotenuse, we get three triangles, two smaller (ΔADB and ΔBDC) and the original one (ΔABC).
Here, ΔABC
ΔADB
ΔBDC.
If we represent the angles of the original
triangle as x,
90
and (90
x);
then the two smaller triangles will also have the same set of three
angles.
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In ΔABC from the figure; if AB = 3 cm, BC = 4 cm and AC = 5 cm, find the length of the perpendicular DB. Solution: ΔABC
Alternatively, Area of ΔABC considering AB as height and BC as base = Area of triangle considering BD as height and AC as base.
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A piece of paper is in the shape of a right angled triangle and is cut along a line that is parallel to the hypotenuse, leaving a smaller triangle. There was a 35% reduction in the length of the hypotenuse of the triangle. If the area of the original triangle was 34 square inches before the cut, what is the area (in square inches) of the smaller triangle? [CAT 2003 Re-Test] (1) 16.665(2) 16.565 (3) 15.465(4) 14.365 Solution: Since DE is parallel to AC, ∆ABC is similar to ∆DBE by AAA rule of similarity, i.e. ΔABC ~ ΔDBE
When two triangles are similar, the ratio of their areas is equal to the ratio of squares of their corresponding sides.
Hence, option 4. |
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Consider the triangle ABC shown in the following
figure where BC = 12 cm, DB = 9 cm, CD = 6 cm and [CAT 2005]
(1) 7/9(2) 8/9 (3) 6/9(4) 5/9 Solution: m ∆ABC is similar to ∆CBD. AB/CB = BC/BD = AC/CD AB/12 = 12/9 = AC/6 AB = 16 cm and AC = 8 cm AD = AB – BD = 16 – 9 = 7 cm
Hence, option 1. |
Two triangles are said to be congruent if their corresponding sides are equal. The notation for congruency is “≅”.
In the above figure, ΔABC is congruent to ΔDEF because AB = DE, BC = EF and CA = FD. Also, when the triangles are congruent, the angles of one triangle are congruent to the corresponding angles of the other triangle.
REMEMBER
- Congruent triangles are similar, but similar triangles are not necessarily congruent.
Congruency of two triangles can be proved by S-S-S, S-A-S, A-S-A, S-A-A tests. Also, in case of right triangles, congruency can be proved by Hypotenuse-Side test.
- S-S-S Test
If three sides of one triangle are equal to three corresponding sides of another triangle, then the two triangles are congruent.
- S-A-S test
If two sides and their included angle of one triangle are equal to the two sides and included angle of another triangle, then the two triangles are congruent.
- A-S-A test
If two angles and side included by them of one triangle are equal to the two angles and side included by them of another triangle, then the two triangles are congruent.
- S-A-A test
If a side and two angles of one triangle are equal to the side and two corresponding angles of another triangle, then the two triangles are congruent.
- Hypotenuse-Side test (for right triangles)
In case of two right triangles, if one side and hypotenuse of one triangle is equal to one side and hypotenuse. of another triangle, then the two triangles are congruent.
In any triangle all the three perpendicular bisectors meet at a common point, which is at an equal distance from all the three vertices. Considering this meeting point of perpendicular bisectors as a centre and the distance from this centre to the vertex as radius we can draw a circle. This circle passes through all the three vertices and circumscribes the triangle and hence is known as the circumcircle. The centre of this circle is known as the circumcentre and the radius is known as the circumradius.
The circumradius R is given by the formula,
where a, b and c are the lengths of the sides and A is the area of the triangle.
In the figure below, ‘O’ is circumcentre of the circumcircle of ∆ABC.
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In a triangle ABC, the lengths of the sides AB and AC equal 17.5 cm and 9 cm respectively. Let D be a point on the line segment BC such that AD is perpendicular to BC. If AD = 3 cm, then what is the radius (in cm) of the circle circumscribing the triangle ABC? [CAT 2008] (1) 17.05(2) 27.85 (3) 22.45(4) 32.25 (5) 26.25 Solution:
We know that the area (A) of triangle (ABC) is related to the circumradius (R) and sides of the triangle as follows:
Where, 
Hence, option 5. |
In any triangle all the three angle bisectors meet at a common point, which is at an equal distance from all the three sides. Considering this meeting point of angle bisectors as the centre and the perpendicular distance from this centre to the sides as the radius, we can draw a circle. This circle will touch all the three sides from inside and hence is known as the incircle. The centre of the circle is known as the incentre and the radius is known as the inradius.
The inradius r is given by the formula,
where s is the semiperimeter and A is the area of the triangle.
In the given ∆ABC,
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Find circumradius and inradius of ΔABC; if AB = 6 cm, BC = 8 cm and AC = 10 cm. Solution: In ΔABC, a = BC = 8 cm, b = AC = 10 cm and c = AB = 6 cm We know that (6, 8, 10) is a Pythagorean triplet.
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REMEMBER
- In a right triangle, the midpoint of the hypotenuse will be the
circumcentre and the vertex containing 90
angle will be the orthocentre.
- In an obtuse triangle, the circumcentre and the orthocentre lie outside the triangle.
- In an isosceles triangle, all the four points viz. circumcentre, incentre, centroid and orthocentre lie on the median drawn from the vertex contained by equal sides to the non-equal side.
- In an equilateral triangle all the four points viz. circumcentre, incentre, centroid and orthocentre coincide.
- Equilateral triangle has the maximum area, out of all the triangles that can be inscribed in a given circle.
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Triangle ABD is right-angled at B. On AD there is a point C for which AC = CD and AB = BC. The magnitude of angle DAB, in degrees, is : [FMS 2010] 
(3) 45(4) 30 Solution:
As C is the midpoint of the hypotenuse AD, it is the circumcentre.
But AB = BC
Hence, option 2. |
In ∆ABC, AD is median, then AB2 + AC2 = 2(AD2 + BD2), this is known as Apollonius theorem.
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Find the sum of the medians of isosceles triangle, whose sides are 10, 10 and 12.
Solution: In ΔABC, a = BC = 12 cm, b = AC = 10 cm and c = AB = 10 cm
Let AD, BE and CF are the medians of ΔABC.
Using AB2 + BC2 = 2(BE2 + AE2), we get
Using AC2 + BC2 = 2(CF2 + AF2), we get
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If D is the midpoint of side BC of a triangle ABC and AD is the perpendicular to AC then: (1) 3AC2 = BC2 – AB2 (2) 3BC2 = AC2 – 3AB2 (3) BC2 + AC2 = 5AB2 (4) None of the above [IIFT 2008]
Solution: The figure would be as shown below (not drawn to scale).
Now, BD = DC, then by Apollonius theorem in ∆ABC, we have,
And in ∆ADC, we have,
From (i) and (ii), we get,
Hence, option 1. |
In ∆ABC, if AD is the angle bisector for angle A, then:
or,
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In ∆ABC, AD is the angle bisector such that B-D-C, AB = 5, and AC = 10.
Solution: In ΔABC, AD is angle bisector of
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In ∆ABC, if line DE is parallel to side BC then it divides the other two sides AB and AC in the same proportion.
In ΔABC and ΔADE,
A
is common to both the triangles
mD
= mB
…(
DE is parallel to BC)
mE
= mC
…(
DE is parallel to BC)
Hence ΔABC and ΔADE are similar triangles by
A-A-A test of similarity.
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In ∆ABC from the figure, DE
Solution: In ΔABC, DE
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BC. DE divides side AB in the ratio 2 : 3. If AE = 4 cm, find
AC.
REMEMBER
- Converse of Basic Proportionality is also true.
- SPECIAL CASE:
A line joining midpoints of two sides in a triangle is parallel to the third side and half of it.
So, if AD = DB and AE = EC, then
DE || BC and
-60
If the angles of a triangle are of measure
30,
60and
90,
then
Side opposite to 30
= Half of the hypotenuse
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In ∆ABC, m
Solution: In ∆ABC, m
BC = Side opposite to 30
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If the angles of a triangle are of measure
45,
45
and 90,
then
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∆PQR is a right triangle with PQ = QR = 10. Find the perimeter of ∆PQR.
Solution: In ∆PQR, m
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