Trigonometry formulas for Class 10 are provided here for students. Trigonometry is the study of relationships between angles, lengths, and heights of triangles. It includes ratios, functions, identities, and formulas to solve problems based on it, especially for right-angled triangles. Applications of trigonometry are also found in engineering, astronomy, Physics and architectural design. This chapter is very important as it comprises many topics like Linear Algebra, Calculus and Statistics.
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Trigonometry is introduced in CBSE Class 10. It is a completely new and tricky chapter where one needs to learn all the formulas and apply them accordingly. Trigonometry Class 10 formulas are tabulated below.
List of Trigonometric Formulas for 10th Class
All the important formulas introduced to students in Class 10 are available here. Students can learn these formulas anytime from here and solve trigonometry related problems.
The trigonometric formulas for ratios are majorly based on the three sides of a right-angled triangle, such as the adjacent side or base, perpendicular and hypotenuse (See the above figure). Applying Pythagoras theorem for the given right-angled triangle, we have:
(Perpendicular)2 + (Base)2 = (Hypotenuse)2
⇒ (P)2 + (B)2 = (H)2
Now, let us see the formulas based on trigonometric ratios (sine, cosine, tangent, secant, cosecant and cotangent)
Basic Trigonometric formulas
The Trigonometric formulas are given below:
S.no | Property | Mathematical value |
1 | sin A | Perpendicular/Hypotenuse |
2 | cos A | Base/Hypotenuse |
3 | tan A | Perpendicular/Base |
4 | cot A | Base/Perpendicular |
5 | cosec A | Hypotenuse/Perpendicular |
6 | sec A | Hypotenuse/Base |
Reciprocal Relation Between Trigonometric Ratios
S.no | Identity | Relation |
1 | tan A | sin A/cos A |
2 | cot A | cos A/sin A |
3 | cosec A | 1/sin A |
4 | sec A | 1/cos A |
Trigonometric Sign Functions
- sin (-θ) = − sin θ
- cos (−θ) = cos θ
- tan (−θ) = − tan θ
- cosec (−θ) = − cosec θ
- sec (−θ) = sec θ
- cot (−θ) = − cot θ
Trigonometric Identities
- sin2A + cos2A = 1
- tan2A + 1 = sec2A
- cot2A + 1 = cosec2A
Periodic Identities
- sin(2nπ + θ ) = sin θ
- cos(2nπ + θ ) = cos θ
- tan(2nπ + θ ) = tan θ
- cot(2nπ + θ ) = cot θ
- sec(2nπ + θ ) = sec θ
- cosec(2nπ + θ ) = cosec θ
Complementary Ratios
Quadrant I
- sin(π/2 − θ) = cos θ
- cos(π/2 − θ) = sin θ
- tan(π/2 − θ) = cot θ
- cot(π/2 − θ) = tan θ
- sec(π/2 − θ) = cosec θ
- cosec(π/2 − θ) = sec θ
Quadrant II
- sin(π − θ) = sin θ
- cos(π − θ) = -cos θ
- tan(π − θ) = -tan θ
- cot(π − θ) = – cot θ
- sec(π − θ) = -sec θ
- cosec(π − θ) = cosec θ
Quadrant III
- sin(π + θ) = – sin θ
- cos(π + θ) = – cos θ
- tan(π + θ) = tan θ
- cot(π + θ) = cot θ
- sec(π + θ) = -sec θ
- cosec(π + θ) = -cosec θ
Quadrant IV
- sin(2π − θ) = – sin θ
- cos(2π − θ) = cos θ
- tan(2π − θ) = – tan θ
- cot(2π − θ) = – cot θ
- sec(2π − θ) = sec θ
- cosec(2π − θ) = -cosec θ
Sum and Difference of Two Angles
- sin (A + B) = sin A cos B + cos A sin B
- sin (A − B) = sin A cos B – cos A sin B
- cos (A + B) = cos A cos B – sin A sin B
- cos (A – B) = cos A cos B + sin A sin B
- tan(A + B) = [(tan A + tan B)/(1 – tan A tan B)]
- tan(A – B) = [(tan A – tan B)/(1 + tan A tan B)]
Double Angle Formulas
- sin 2A = 2 sin A cos A = [2 tan A /(1 + tan2A)]
- cos 2A = cos2A – sin2A = 1 – 2 sin2A = 2 cos2A – 1 = [(1 – tan2A)/(1 + tan2A)]
- tan 2A = (2 tan A)/(1 – tan2A)
Triple Angle Formulas
- sin 3A = 3 sinA – 4 sin3A
- cos 3A = 4 cos3A – 3 cos A
- tan 3A = [3 tan A – tan3A]/[1 − 3 tan2A]
Video Lesson on Trigonometry
More Formulas for Class 10
- Algebra Formulas For Class 10
- Geometry Formulas For Class 10
- Maths Formulas For Class 10
- Mensuration Formulas Class 10
Solved Examples
Example 1:
If sin A = ⅗, then find the value of cos A and cot A.
Solution:
Given,
sin A = ⅗
Using the identity, sin2A + cos2A = 1,
cos2A = 1 – (⅗)2
= (25 – 9)/25
= 16/25
cos A = ⅘
Also, cot A = cos A/sin A = (⅘)/(⅗) = 4/3
Example 2:
Evaluate sin 35° cos 55° + cos 35° sin 55°.
Solution:
Given expression:
sin 35° cos 55° + cos 35° sin 55°
This is of the form sin A cos B + cos A sin B.
Thus, by using the identity sin(A + B) = sin A cos B + cos A sin B, we get;
sin 35° cos 55° + cos 35° sin 55° = sin(35° + 55°) = sin 90° = 1
Example 3:
If tan P = cot Q, then prove that P + Q = 90°.
Solution:
Given,
tan P = cot Q
As we know, tan(90° – A) = cot A.
So, tan P = tan(90° – Q)
Therefore, P = 90° – Q
And
P + Q = 90°
Hence proved.
Practice Questions
- Evaluate: sin 28°/cos 62°
- Find the value of tan 1° tan 2° tan 3° … tan 89°.
- If cos A + cos2A = 1, then show that sin2A + sin4A = 1.
Frequently Asked Questions – FAQs
What are the six ratios of trigonometry?
What are the Pythagorean identities of trigonometry?
sin2A + cos2A = 1
tan2A + 1 = sec2A
cot2A + 1 = cosec2A
How do you write the formulas for trigonometry ratios?
sin A = Side opposite to A/Hypotenuse
cos A = Side adjacent to A/Hypotenuse
tan A = Side opposite to A/Side adjacent to A
cot A = Side adjacent to A/Side opposite to A
cosec A = Hypotenuse/Side opposite to A
sec A = Hypotenuse/Side adjacent to A
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